Self-assembled nanostructures from amphiphilic block copolymers prepared via ring-opening metathesis polymerization (ROMP)
Tài liệu tham khảo
Casey, 2006, 2005 Nobel prize in chemistry. Development of the olefin metathesis method in organic synthesis, J Chem Educ, 83, 192, 10.1021/ed083p192
Randall, 1998, Selective olefin metatheses—new tools for the organic chemist: a review, J Mol Catal A Chem, 133, 29, 10.1016/S1381-1169(98)00102-2
Mutlu, 2011, Acyclic diene metathesis: a versatile tool for the construction of defined polymer architectures, Chem Soc Rev, 40, 1404, 10.1039/B924852H
Ehrhorn, 2019, Well-defined alkyne metathesis catalysts: developments and recent applications, Chem Eur J, 25, 3190, 10.1002/chem.201804511
Bielawski, 2007, Living ring-opening metathesis polymerization, Prog Polym Sci, 32, 1, 10.1016/j.progpolymsci.2006.08.006
Bielawski, 2000, Highly efficient ring-opening metathesis polymerization (ROMP) using new ruthenium catalysts containing N-Heterocyclic carbene ligands, Angew Chem Int Ed, 39, 2903, 10.1002/1521-3773(20000818)39:16<2903::AID-ANIE2903>3.0.CO;2-Q
Hillmyer, 1999, Block copolymer synthesis, Curr Opin Solid State Mater Sci, 4, 559, 10.1016/S1359-0286(00)00006-1
Calderon, 1967, Olefin metathesis - A novel reaction for skeletal transformations of unsaturated hydrocarbons, Tetrahedron Lett, 8, 3327, 10.1016/S0040-4039(01)89881-6
Eleuterio, 1991, Olefin metathesis: chance favors those minds that are best prepared, J Mol Catal, 65, 55, 10.1016/0304-5102(91)85082-D
Calderon, 1968, Olefin metathesis, I. Acyclic vinylenic hydrocarbons. J Am Chem Soc, 90, 4133, 10.1021/ja01017a039
Calderon, 1972, Olefin metathesis reaction, Acc Chem Res, 5, 127, 10.1021/ar50052a002
Jean-Louis Hérisson, 1971, Catalyse de transformation des oléfines par les complexes du tungstène. II. Télomérisation des oléfines cycliques en présence d’oléfines acycliques, Makromol Chem, 141, 161, 10.1002/macp.1971.021410112
Grubbs, 1975, Mechanism of the olefin metathesis reaction, J Am Chem Soc, 97, 3265, 10.1021/ja00844a082
Grubbs, 1976, Consideration of the mechanism of the metal catalyzed olefin metathesis reaction, J Am Chem Soc, 98, 3478, 10.1021/ja00428a015
Dias, 1997, Well-defined ruthenium olefin metathesis catalysts: mechanism and activity, J Am Chem Soc, 119, 3887, 10.1021/ja963136z
Nelson, 2014, Key processes in ruthenium-catalysed olefin metathesis, Chem Commun, 50, 10355, 10.1039/C4CC02515F
Liu, 2009, Di(ethylene glycol) vinyl ether: a highly efficient deactivating reagent for olefin metathesis catalysts, Tetrahedron Lett, 50, 6103, 10.1016/j.tetlet.2009.08.055
Hong, 2007, Decomposition of ruthenium olefin metathesis catalysts, J Am Chem Soc, 129, 7961, 10.1021/ja0713577
Ireland, 2015, Decomposition of a phosphine-free metathesis catalyst by amines and other bronsted bases: metallacyclobutane deprotonation as a major deactivation pathway, ACS Catal, 5, 4690, 10.1021/acscatal.5b00813
Bailey, 2018, Bimolecular coupling as a vector for decomposition of fast-initiating olefin metathesis catalysts, J Am Chem Soc, 140, 6931, 10.1021/jacs.8b02709
Bailey, 2017, Decomposition of olefin metathesis catalysts by brønsted base: metallacyclobutane deprotonation as a primary deactivating event, J Am Chem Soc, 139, 16446, 10.1021/jacs.7b08578
Deshmukh, 2007, Alkene metathesis: the search for better catalysts, Dalton Trans, 2479, 10.1039/b703164p
Schrock, 1975, First isolable transition metal methylene complex and analogs. Characterization, mode of decomposition, and some simple reactions, J Am Chem Soc, 97, 6577, 10.1021/ja00855a048
Kress, 1982, Tungsten (IV) carbenes for the metathesis of olefins. Direct observation and identification of the chain carrying carbene complexes in a highly active catalyst system, Chem Commun, 514, 10.1039/c39820000514
Schrock, 1990, Synthesis of molybdenum imido alkylidene complexes and some reactions involving acyclic olefins, J Am Chem Soc, 112, 3875, 10.1021/ja00166a023
Schwab, 1995, A Series of Well-Defined Metathesis Catalysts–Synthesis of [RuCl2(CHR′)(PR3)2] and Its Reactions, Angew Chem Int Ed, 34, 2039, 10.1002/anie.199520391
Schwab, 1996, Synthesis and applications of RuCl2(CHR‘)(PR3)2: the influence of the alkylidene moiety on metathesis activity, J Am Chem Soc, 118, 100, 10.1021/ja952676d
Huang, 1999, Influence of sterically demanding carbene ligation on catalytic behavior and thermal stability of ruthenium olefin metathesis catalysts, Organometallics, 18, 5375, 10.1021/om990788y
Huang, 1999, Olefin metathesis-active ruthenium complexes bearing a nucleophilic carbene ligand, J Am Chem Soc, 121, 2674, 10.1021/ja9831352
Ackermann, 1999, Ruthenium carbene complexes with imidazolin-2-ylidene ligands allow the formation of tetrasubstituted cycloalkenes by RCM, Tetrahedron Lett, 40, 4787, 10.1016/S0040-4039(99)00919-3
Weskamp, 1999, N-heterocyclic carbenes: novel ruthenium–alkylidene complexes, J Organomet Chem, 582, 362, 10.1016/S0022-328X(99)00163-1
Weskamp, 1999, Highly active ruthenium catalysts for olefin metathesis: the synergy of N-Heterocyclic carbenes and coordinatively labile ligands, Angew Chem Int Ed, 38, 2416, 10.1002/(SICI)1521-3773(19990816)38:16<2416::AID-ANIE2416>3.0.CO;2-#
Chatterjee, 1999, Synthesis of trisubstituted alkenes via olefin cross-metathesis, Org Lett, 1, 1751, 10.1021/ol991023p
Scholl, 1999, Synthesis and activity of a new generation of ruthenium-based olefin metathesis catalysts coordinated with 1,3-Dimesityl-4,5-dihydroimidazol-2-ylidene ligands, Org Lett, 1, 953, 10.1021/ol990909q
Scholl, 1999, Increased ring closing metathesis activity of ruthenium-based olefin metathesis catalysts coordinated with imidazolin-2-ylidene ligands, Tetrahedron Lett, 40, 2247, 10.1016/S0040-4039(99)00217-8
Kingsbury, 1999, A recyclable Ru-based metathesis catalyst, J Am Chem Soc, 121, 791, 10.1021/ja983222u
Garber, 2000, Efficient and recyclable monomeric and dendritic Ru-Based metathesis catalysts, J Am Chem Soc, 122, 8168, 10.1021/ja001179g
Gessler, 2000, Synthesis and metathesis reactions of a phosphine-free dihydroimidazole carbene ruthenium complex, Tetrahedron Lett, 41, 9973, 10.1016/S0040-4039(00)01808-6
Love, 2002, A practical and highly active ruthenium-based catalyst that effects the cross metathesis of acrylonitrile, Angew Chem Int Ed, 41, 4035, 10.1002/1521-3773(20021104)41:21<4035::AID-ANIE4035>3.0.CO;2-I
Schaverien, 1986, Multiple metal-carbon bonds43. Well-characterized, highly active, Lewis acid free olefin metathesis catalysts, J Am Chem Soc, 108, 2771, 10.1021/ja00270a056
Foster, 2018, Ring-opening metathesis polymerization in aqueous media using a macroinitiator approach, Angew Chem Int Ed, 57, 10672, 10.1002/anie.201806719
Wright, 2018, Aqueous-phase ring-opening metathesis polymerization-induced self-assembly, ACS Macro Lett, 7, 401, 10.1021/acsmacrolett.8b00091
Sanford, 2001, Mechanism and activity of ruthenium olefin metathesis catalysts, J Am Chem Soc, 123, 6543, 10.1021/ja010624k
Sanford, 2001, New insights into the mechanism of ruthenium-catalyzed olefin metathesis reactions, J Am Chem Soc, 123, 749, 10.1021/ja003582t
Harrity, 1997, Ru-catalyzed rearrangement of styrenyl ethers. Enantioselective synthesis of Chromenes through Zr- and Ru-Catalyzed processes, J Am Chem Soc, 119, 1488, 10.1021/ja9636597
Randl, 2001, Highly selective cross metathesis with acrylonitrile using a phosphine free Ru-complex, Synlett, 2001, 0430, 10.1055/s-2001-11393
Imhof, 2001, Ruthenium catalysed cross metathesis with fluorinated olefins, Chem Commun, 1692, 10.1039/b105031c
Hoveyda, 2004, Ru complexes bearing bidentate carbenes: from innocent curiosity to uniquely effective catalysts for olefin metathesis, Org Biomol Chem, 2, 8, 10.1039/b311496c
Zhang, 2010, Hydrogels based on living ring-opening metathesis polymerization, Macromolecules, 43, 10246, 10.1021/ma101950f
Radzinski, 2016, Bottlebrush polymer synthesis by ring-opening metathesis polymerization: the significance of the anchor group, J Am Chem Soc, 138, 6998, 10.1021/jacs.5b13317
Chang, 2017, Design, synthesis, and self-assembly of polymers with tailored graft distributions, J Am Chem Soc, 139, 17683, 10.1021/jacs.7b10525
Lin, 2017, Control of grafting density and distribution in graft polymers by living ring-opening metathesis copolymerization, J Am Chem Soc, 139, 3896, 10.1021/jacs.7b00791
Walsh, 2017, Kinetic study of living ring-opening metathesis polymerization with third-generation grubbs catalysts, J Am Chem Soc, 139, 13644, 10.1021/jacs.7b08010
Romero, 2004, McDonald R. Rapidly initiating ruthenium olefin-metathesis catalysts, Angew Chem Int Ed, 43, 6161, 10.1002/anie.200461374
Skowerski, 2012, Highly active catalysts for olefin metathesis in water, Catal Sci Technol, 2, 2424, 10.1039/c2cy20320k
Czarnocki, 2017, Rational and then serendipitous formation of aza analogues of hoveyda-type catalysts containing a chelating ester group leading to a polymerization catalyst family, ACS Catal, 7, 4115, 10.1021/acscatal.7b00843
Ben-Asuly, 2008, A thermally switchable latent ruthenium olefin metathesis catalyst, Organometallics, 27, 811, 10.1021/om701180z
Sutthasupa, 2010, Recent advances in ring-opening metathesis polymerization, and application to synthesis of functional materials, Polym J, 42, 905, 10.1038/pj.2010.94
Neary, 2017, Variable temperature ROMP: leveraging low ring strain thermodynamics to achieve well-defined polypentenamers, Macromolecules, 50, 4935, 10.1021/acs.macromol.7b01148
Neary, 2018, Well-defined and precision-grafted bottlebrush polypentenamers from variable temperature ROMP and ATRP, ACS Macro Lett, 7, 1080, 10.1021/acsmacrolett.8b00576
Pearce, 2019, Recent developments in entropy-driven ring-opening metathesis polymerization: mechanistic considerations, unique functionality, and sequence control, J Polym Sci Part A: Polym Chem, 57, 1621, 10.1002/pola.29428
Schleyer, 1970, Evaluation of strain in hydrocarbons. The strain in adamantane and its origin, J Am Chem Soc, 92, 2377, 10.1021/ja00711a030
Choi, 2003, Controlled living ring-opening-Metathesis polymerization by a fast-initiating ruthenium catalyst, Angew Chem Int Ed, 42, 1743, 10.1002/anie.200250632
Slugovc, 2004, The ring opening metathesis polymerisation toolbox, Macromol Rapid Commun, 25, 1283, 10.1002/marc.200400150
Sauer, 1967, Diels-alder reactions II: the reaction mechanism, Angew Chem Int Ed, 6, 16, 10.1002/anie.196700161
Hoffmann, 1965, Orbital symmetries and endo-exo relationships in concerted cycloaddition reactions, J Am Chem Soc, 87, 4388, 10.1021/ja00947a033
Seehof, 1993, Selective reaction with exo-isomers in ring-opening olefin metathesis polymerization (ROMP) of fluoroalkyl-substituted norbornene derivatives, Macromolecules, 26, 695, 10.1021/ma00056a021
Rule, 2002, ROMP Reactivity of endo- and exo-Dicyclopentadiene, Macromolecules, 35, 7878, 10.1021/ma0209489
Hyatt, 2019, Mechanistic and kinetic studies of the ring opening metathesis polymerization of norbornenyl monomers by a grubbs third generation catalyst, J Am Chem Soc, 141, 17918, 10.1021/jacs.9b09752
Wolf, 2019, Examining the effects of monomer and catalyst structure on the mechanism of ruthenium-catalyzed ring-opening metathesis polymerization, J Am Chem Soc, 141, 17796, 10.1021/jacs.9b08835
Ver Nooy, 1955, Formation of nortricyclene derivatives by bromination of exo-2,5-Methylene-1,2,5,6-tetrahydrobenzoic acids, J Am Chem Soc, 77, 3583, 10.1021/ja01618a048
Kanao, 2012, Stereo-selective synthesis of 5-Norbornene-2-exo-carboxylic acid—rapid isomerization and kinetically selective hydrolysis, Int J Org Chem, 2, 26, 10.4236/ijoc.2012.21005
Walker, 2009, The living ROMP of trans-cyclooctene, Macromolecules, 42, 599, 10.1021/ma801693q
Martinez, 2014, Ring-opening metathesis polymerization of 8-membered cyclic olefins, Polym Chem, 5, 3507, 10.1039/c3py01787g
Kataoka, 2001, Block copolymer micelles for drug delivery: design, characterization and biological significance, Adv Drug Deliv Rev, 47, 113, 10.1016/S0169-409X(00)00124-1
Jhaveri, 2014, Multifunctional polymeric micelles for delivery of drugs and siRNA, Front Pharmacol, 5, 10.3389/fphar.2014.00077
Movassaghian, 2015, Applications of polymer micelles for imaging and drug delivery, WIREs Nanomed Nanobiotechnol, 7, 691, 10.1002/wnan.1332
Cabral, 2018, Block copolymer micelles in nanomedicine applications, Chem Rev, 118, 6844, 10.1021/acs.chemrev.8b00199
Pearce, 2019, Insights into active targeting of nanoparticles in drug delivery: advances in clinical studies and design considerations for Cancer nanomedicine, Bioconjugate Chem, 30, 2300, 10.1021/acs.bioconjchem.9b00456
Hilf, 2009, Functional end groups for polymers prepared using ring-opening metathesis polymerization, Nat Chem, 1, 537, 10.1038/nchem.347
Leitgeb, 2010, The ROMP toolbox upgraded, Polymer, 51, 2927, 10.1016/j.polymer.2010.05.002
Lunn, 2017, Established and emerging strategies for polymer chain-end modification, J Polym Sci Part A: Polym Chem, 55, 2903, 10.1002/pola.28575
Zhang, 2018, Practical synthesis of functional metathesis initiators using enynes, Macromolecules, 51, 6497, 10.1021/acs.macromol.8b00866
Pal, 2018, Functional metathesis catalyst through ring closing enyne metathesis: one pot protocol for living heterotelechelic polymers, J Am Chem Soc, 140, 3181, 10.1021/jacs.7b12805
Park, 2012, Fast tandem ring-opening/ring-closing metathesis polymerization from a monomer containing cyclohexene and terminal alkyne, J Am Chem Soc, 134, 7270, 10.1021/ja3017335
Park, 2013, tandem ring-opening/ring-closing metathesis polymerization: relationship between monomer structure and reactivity, J Am Chem Soc, 135, 10769, 10.1021/ja4039278
Fu, 2018, Relay conjugation of living metathesis polymers, J Am Chem Soc, 140, 12181, 10.1021/jacs.8b07315
Schacher, 2012, Functional block copolymers: nanostructured materials with emerging applications, Angew Chem Int Ed, 51, 7898, 10.1002/anie.201200310
Feng, 2017, Block copolymers: synthesis, self-assembly, and applications, Polymers, 9, 10.3390/polym9100494
Aoshima, 2009, Renaissance in living cationic polymerization, Chem Rev, 109, 5245, 10.1021/cr900225g
Hadjichristidis, 2001, Polymers with complex architecture by living anionic polymerization, Chem Rev, 101, 3747, 10.1021/cr9901337
Fuchise, 2013, Recent progress in organocatalytic group transfer polymerization, Polym Chem, 4, 4278, 10.1039/c3py00278k
Braunecker, 2007, Controlled/living radical polymerization: features, developments, and perspectives, Prog Polym Sci, 32, 93, 10.1016/j.progpolymsci.2006.11.002
Matyjaszewski, 2012, Atom transfer radical polymerization (ATRP): current status and future perspectives, Macromolecules, 45, 4015, 10.1021/ma3001719
Hawker, 2001, New polymer synthesis by nitroxide mediated living radical polymerizations, Chem Rev, 101, 3661, 10.1021/cr990119u
Keddie, 2014, A guide to the synthesis of block copolymers using reversible-addition fragmentation chain transfer (RAFT) polymerization, Chem Soc Rev, 43, 496, 10.1039/C3CS60290G
Nuyken, 2013, Ring-opening polymerization—an introductory review, Polymers, 5, 361, 10.3390/polym5020361
Yokozawa, 2002, Chain-growth polycondensation for well-defined aramide. Synthesis of unprecedented block copolymer containing aramide with low polydispersity, J Am Chem Soc, 124, 15158, 10.1021/ja021188k
Frenzel, 2002, Ruthenium-based metathesis initiators: development and use in ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 40, 2895, 10.1002/pola.10324
Radzinski, 2017, Tapered bottlebrush polymers: cone-shaped nanostructures by sequential addition of macromonomers, ACS Macro Lett, 6, 1175, 10.1021/acsmacrolett.7b00724
Gringolts, 2019, Olefin metathesis in multiblock copolymer synthesis, Beilstein J Org Chem, 15, 218, 10.3762/bjoc.15.21
Shieh, 2019, Tailored silyl ether monomers enable backbone-degradable polynorbornene-based linear, bottlebrush and star copolymers through ROMP, Nat Chem, 11, 1124, 10.1038/s41557-019-0352-4
Fishman, 2013, Synthesis of Functionalizable and degradable polymers by ring-opening metathesis polymerization, Angew Chem Int Ed, 52, 5061, 10.1002/anie.201300293
Mallick, 2018, Oxadiazabicyclooctenone as a versatile monomer for the construction of pH sensitive functional polymers via ROMP, Polym Chem, 9, 372, 10.1039/C7PY01413A
Isarov, 2015, Protein ROMP: aqueous graft-from ring-opening metathesis polymerization, ACS Macro Lett, 4, 969, 10.1021/acsmacrolett.5b00497
Matson, 2008, Synthesis of Fluorine-18 functionalized nanoparticles for use as in vivo molecular imaging agents, J Am Chem Soc, 130, 6731, 10.1021/ja802010d
Smith, 2007, Bioactive and therapeutic ROMP polymers, Polym Rev (Phila Pa), 47, 419, 10.1080/15583720701455186
Anonymous, European Medicines Agency, 2019
Vougioukalakis, 2012, Removing ruthenium residues from olefin metathesis reaction products, Chem Eur J, 18, 8868, 10.1002/chem.201200600
Ogawa, 2015, Metal-free ring-opening metathesis polymerization, J Am Chem Soc, 137, 1400, 10.1021/ja512073m
Goetz, 2015, Metal-free preparation of linear and cross-linked polydicyclopentadiene, J Am Chem Soc, 137, 7572, 10.1021/jacs.5b03665
Goetz, 2016, Expanded functionality of polymers prepared using metal-free ring-opening metathesis polymerization, ACS Macro Lett, 5, 579, 10.1021/acsmacrolett.6b00131
Pascual, 2016, Comparison of pyrylium and thiopyrylium photooxidants in metal-free ring-opening metathesis polymerization, Synlett, 27, 759, 10.1055/s-0035-1561330
Lu, 2019, Integration of metal-free ring-opening metathesis polymerization and organocatalyzed ring-opening polymerization through a bifunctional initiator, Polym Chem, 10, 2975, 10.1039/C8PY01417E
Krappitz, 2019, Hybrid photo-induced copolymerization of ring-strained and vinyl monomers utilizing metal-free ring-opening metathesis polymerization conditions, J Am Chem Soc, 141, 16605, 10.1021/jacs.9b09025
Weiss, 2015, Sequence-controlled copolymers prepared via entropy-driven ring-opening metathesis polymerization, ACS Macro Lett, 4, 1039, 10.1021/acsmacrolett.5b00528
Gutekunst, 2015, A general approach to sequence-controlled polymers using macrocyclic ring opening metathesis polymerization, J Am Chem Soc, 137, 8038, 10.1021/jacs.5b04940
Mai, 2012, Self-assembly of block copolymers, Chem Soc Rev, 41, 5969, 10.1039/c2cs35115c
Brendel, 2018, Block Copolymer Self-Assembly in Solution—Quo Vadis?, Chem Asian J, 13, 230, 10.1002/asia.201701542
Mendes, 2013, Self-assembly in nature: using the principles of nature to create complex nanobiomaterials, WIREs Nanomed Nanobiotechnol, 5, 582, 10.1002/wnan.1238
Sánchez-Iglesias, 2012, Hydrophobic interactions modulate self-assembly of nanoparticles, ACS Nano, 6, 11059, 10.1021/nn3047605
Israelachvili, 2011
Blanazs, 2009, Self-assembled block copolymer aggregates: from Micelles to vesicles and their biological applications, Macromol Rapid Commun, 30, 267, 10.1002/marc.200800713
Antonietti, 2003, Vesicles and liposomes: a self-assembly principle beyond lipids, Adv Mater, 15, 1323, 10.1002/adma.200300010
Foster, 2018, Predicting monomers for use in polymerization-induced self-assembly, Angew Chem Int Ed, 57, 15733, 10.1002/anie.201809614
Figg, 2017, Tuning hydrophobicity to program block copolymer assemblies from the inside out, Macromolecules, 50, 935, 10.1021/acs.macromol.6b02754
Howe, 2018, Functionalization-induced self-assembly of block copolymers for nanoparticle synthesis, ACS Macro Lett, 7, 1503, 10.1021/acsmacrolett.8b00815
Olsen, 2008, Self-assembly of rod–coil block copolymers, Mater Sci Eng R Rep, 62, 37, 10.1016/j.mser.2008.04.001
Fenyves, 2014, Aqueous self-assembly of giant bottlebrush block copolymer surfactants as shape-tunable building blocks, J Am Chem Soc, 136, 7762, 10.1021/ja503283r
Shi, 2014, Disk-like micelles with a highly ordered pattern from molecular bottlebrushes, ACS Macro Lett, 3, 70, 10.1021/mz400619g
Hua, 2016, Micellar nanoparticles with tuneable morphologies through interactions between nucleobase-containing synthetic polymers in aqueous solution, Polym Chem, 7, 4254, 10.1039/C6PY00716C
Sherrington, 2001, Self-assembly in synthetic macromolecular systems multiple hydrogen bonding interactions, Chem Soc Rev, 30, 83, 10.1039/b008033k
Lutz, 2006, Solution self-assembly of tailor-made macromolecular building blocks prepared by controlled radical polymerization techniques, Polym Int, 55, 979, 10.1002/pi.2058
Zhong, 2016, Self-assembly of amphiphilic linear diblock rod-coil molecules by hydrogen bond and π-π stacking interactions, Chin J Polym Sci, 34, 307, 10.1007/s10118-016-1755-y
Gilroy, 2010, Monodisperse cylindrical micelles by crystallization-driven living self-assembly, Nat Chem, 2, 566, 10.1038/nchem.664
Arno, 2017, Precision epitaxy for aqueous 1D and 2D poly(ε-caprolactone) assemblies, J Am Chem Soc, 139, 16980, 10.1021/jacs.7b10199
Varlas, 2018, Photoinitiated polymerization-induced self-assembly in the presence of surfactants enables membrane protein incorporation into vesicles, Macromolecules, 51, 6190, 10.1021/acs.macromol.8b00994
Penfold, 2019, Emerging trends in polymerization-induced self-assembly, ACS Macro Lett, 8, 1029, 10.1021/acsmacrolett.9b00464
Blanazs, 2011, Mechanistic insights for block copolymer morphologies: how do worms form vesicles?, J Am Chem Soc, 133, 16581, 10.1021/ja206301a
Zhang, 1995, Multiple morphologies of “crew-cut” aggregates of polystyrene-b-poly(acrylic acid) block copolymers, Science, 268, 1728, 10.1126/science.268.5218.1728
Cameron, 1999, 1998 E.W.R. Steacie award lecture asymmetric amphiphilic block copolymers in solution: a morphological wonderland, Can J Chem, 77, 1311, 10.1139/v99-141
Shen, 2000, Control of architecture in block-copolymer vesicles, Angew Chem Int Ed, 39, 3310, 10.1002/1521-3773(20000915)39:18<3310::AID-ANIE3310>3.0.CO;2-2
Mai, 2007, Real-time hierarchical self-assembly of large compound vesicles from an amphiphilic hyperbranched multiarm copolymer, Small, 3, 1170, 10.1002/smll.200600733
Varlas, 2018, Poly(sarcosine)-Based nano-objects with multi-protease resistance by aqueous photoinitiated polymerization-induced self-assembly (Photo-PISA), Biomacromolecules, 19, 4453, 10.1021/acs.biomac.8b01326
Cui, 2007, Block copolymer assembly via kinetic control, Science, 317, 647, 10.1126/science.1141768
Varlas, 2019, Polymerization-Induced Polymersome Fusion. J Am Chem Soc, 141, 20234
Zhao, 2018, Exchange kinetics for a single block copolymer in micelles of two different sizes, Macromolecules, 51, 2312, 10.1021/acs.macromol.7b02550
Kidd, 2017, Tuning biocompatible block copolymer micelles by varying solvent composition: dynamics and populations of micelles and unimers, Macromolecules, 50, 4335, 10.1021/acs.macromol.6b02579
Parent, 2017, Directly observing micelle fusion and growth in solution by liquid-cell transmission electron microscopy, J Am Chem Soc, 139, 17140, 10.1021/jacs.7b09060
Zhang, 2017, Theoretical modeling and simulations of self-assembly of copolymers in solution, Prog Polym Sci, 75, 1, 10.1016/j.progpolymsci.2017.04.003
Zhang, 1999, Thermodynamic vs kinetic aspects in the formation and morphological transitions of crew-cut aggregates produced by self-assembly of Polystyrene-b-poly(acrylic acid) block copolymers in dilute solution, Macromolecules, 32, 2239, 10.1021/ma981039f
Yan, 2016, Kinetic trapping – a strategy for directing the self-assembly of unique functional nanostructures, Chem Commun, 52, 11870, 10.1039/C6CC03620A
Santos, 2014, Kinetically arrested assemblies of architecturally distinct block copolymers, Macromolecules, 47, 137, 10.1021/ma402047e
Lund, 2013, Kinetic pathway of the cylinder-to-Sphere transition in block copolymer micelles observed in situ by time-resolved neutron and synchrotron scattering, ACS Macro Lett, 2, 1082, 10.1021/mz400521p
He, 2006, Dynamics of spontaneous vesicle formation in dilute solutions of amphiphilic diblock copolymers, Macromolecules, 39, 2654, 10.1021/ma052536g
Qi, 2017, Dynamic density functional theories for inhomogeneous polymer systems compared to brownian dynamics simulations, Macromolecules, 50, 9831, 10.1021/acs.macromol.7b02017
Korchagina, 2013, Effect of heating rate on the pathway for vesicle formation in salt-free aqueous solutions of thermosensitive cationic diblock copolymers, Macromolecules, 46, 2341, 10.1021/ma302666e
He, 2006, Using prenucleation to control complex copolymeric vesicle formation in solution, Macromolecules, 39, 8908, 10.1021/ma0622478
Ianiro, 2019, Liquid–liquid phase separation during amphiphilic self-assembly, Nat Chem, 11, 320, 10.1038/s41557-019-0210-4
Epps, 2016, Block copolymers: controlling nanostructure to generate functional materials – synthesis, characterization, and engineering, Chem Sci, 7, 1674, 10.1039/C5SC03505H
Nomura, 2010, Precise synthesis of polymers containing functional end groups by living ring-opening metathesis polymerization (ROMP): efficient tools for synthesis of block/graft copolymers, Polymer, 51, 1861, 10.1016/j.polymer.2010.02.028
Nicolai, 2010, Dynamic polymeric micelles versus frozen nanoparticles formed by block copolymers, Soft Matter, 6, 3111, 10.1039/b925666k
Verduzco, 2015, Structure, function, self-assembly, and applications of bottlebrush copolymers, Chem Soc Rev, 44, 2405, 10.1039/C4CS00329B
Varlas, 2019, Ring-opening metathesis polymerization-induced self-assembly (ROMPISA), Chem Commun, 55, 9066, 10.1039/C9CC04445K
Claverie, 2001, Ring-opening metathesis polymerization in emulsion, Macromolecules, 34, 382, 10.1021/ma001570m
Quémener, 2005, Latex particles by miniemulsion ring-opening metathesis polymerization, Macromolecules, 38, 7977, 10.1021/ma051027b
Haschick, 2010, Nanoparticles by ROMP in nonaqueous emulsions, Macromol Chem Phys, 211, 2547, 10.1002/macp.201000389
Öztürk, 2017, Nonaqueous and aqueous emulsion ROMP reactions induced by environment-friendly latent ruthenium indenylidene catalyst bearing morpholine substituted bidentate (N, O) schiff bases, Macromol Chem Phys, 218, 10.1002/macp.201600594
Pichavant, 2018, Photolatent ring-opening metathesis polymerization in miniemulsion: a powerful approach to produce polynorbornene latexes, Polym Chem, 9, 5491, 10.1039/C8PY01011K
Zhu, 2018, Ring-opening metathesis polymerization in miniemulsion using a TEGylated ruthenium-based metathesis catalyst, Macromolecules, 51, 9088, 10.1021/acs.macromol.8b02240
Héroguez, 2000, Synthesis of latex particles by ring-opening metathesis polymerization in dispersed medium, Macromol Symp, 150, 269, 10.1002/1521-3900(200002)150:1<269::AID-MASY269>3.0.CO;2-I
Chemtob, 2002, Dispersion ring-opening metathesis polymerization of norbornene using PEO-Based stabilizers, Macromolecules, 35, 9262, 10.1021/ma020871o
Chemtob, 2004, Synthesis of polybutadiene-based particles via dispersion ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 42, 1154, 10.1002/pola.11048
Le Meur, 2012, Crosslinked polynorbornene particles synthesis by ring-opening metathesis polymerization in dispersion, J Polym Sci Part A: Polym Chem, 50, 1746, 10.1002/pola.25941
Chemtob, 2004, 1,4-polybutadiene-Based particles prepared by aqueous suspension ring-opening metathesis polymerization, Macromolecules, 37, 7619, 10.1021/ma049399s
Lee, 2004, Suspension ring-opening metathesis polymerization: the preparation of norbornene-based resins for application in organic synthesis, J Org Chem, 69, 3319, 10.1021/jo049827s
Bai, 2015, Chemical control over cellular uptake of organic nanoparticles by fine tuning surface functional groups, ACS Nano, 9, 10227, 10.1021/acsnano.5b03909
Bai, 2016, A highly efficient single-chain metal–organic nanoparticle catalyst for alkyne–azide “click” reactions in water and in cells, J Am Chem Soc, 138, 11077, 10.1021/jacs.6b04477
Xing, 2017, Bottom-up strategy to prepare nanoparticles with a single DNA strand, J Am Chem Soc, 139, 3623, 10.1021/jacs.7b00065
Chen, 2018, Enzyme-like click catalysis by a copper-containing single-chain nanoparticle, J Am Chem Soc, 140, 13695, 10.1021/jacs.8b06875
Watson, 1999, Hybrid nanoparticles with block copolymer shell structures, J Am Chem Soc, 121, 462, 10.1021/ja983173l
Skaff, 2002, Preparation of cadmium selenide−polyolefin composites from functional phosphine oxides and ruthenium-based metathesis, J Am Chem Soc, 124, 5729, 10.1021/ja012576+
Kong, 2007, Surface-initiated, ring-opening metathesis polymerization: formation of diblock copolymer brushes and solvent-dependent morphological changes, Langmuir, 23, 6761, 10.1021/la700568j
Liu, 2008, Cross-linked polynorbornene-coated gold nanoparticles: dependence of particle stability on cross-linking position and cross-linker structure, Langmuir, 24, 11169, 10.1021/la8017985
Cao, 2016, The formation and study of poly(ethylene oxide)-poly(norbornene) block-copolymers on the surface of titanium-dioxide particles: a novel approach towards application of si-ROMP to larger surface modification, Polym Chem, 7, 2751, 10.1039/C5PY02039E
Pribyl, 2019, Polyethylene grafted silica nanoparticles prepared via surface-initiated ROMP, ACS Macro Lett, 8, 228, 10.1021/acsmacrolett.8b00956
Carrillo, 2004, Block copolymer nanoparticles of controlled sizes via ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 42, 3352, 10.1002/pola.20130
Stubenrauch, 2006, Precise tuning of Micelle, core, and shell size by the composition of amphiphilic block copolymers derived from ROMP investigated by DLS and SAXS, Macromolecules, 39, 5865, 10.1021/ma060451p
Barnhill, 2015, Phase diagrams of polynorbornene amphiphilic block copolymers in solution, Macromolecules, 48, 1152, 10.1021/ma502163j
Dalphond, 2002, Synthesis and self-assembly of polymers containing dicarboximide groups by living ring-opening metathesis polymerization, Macromol Chem Phys, 203, 1988, 10.1002/1521-3935(200209)203:13<1988::AID-MACP1988>3.0.CO;2-R
Eren, 2009, Phosphonic acid-based amphiphilic diblock copolymers derived from ROMP, J Polym Sci Part A: Polym Chem, 47, 3949, 10.1002/pola.23425
Sutthasupa, 2008, Copolymerization of amino acid functionalized norbornene monomers. Synthesis of amphiphilic block copolymers forming reverse micelles, Macromolecules, 41, 305, 10.1021/ma7022233
Sutthasupa, 2010, Ring-opening metathesis block copolymerization of amino acid functionalized norbornene monomers. Effects of solvent and pH on micelle formation, Macromolecules, 43, 1815, 10.1021/ma902405g
Biagini, 2007, Investigation into the ROMP copolymerization of peptide- and PEG-functionalized norbornene derivatives, J Polym Sci Part A: Polym Chem, 45, 3178, 10.1002/pola.22068
Parry, 2008, Cryo Electron tomography reveals confined complex morphologies of tripeptide-containing amphiphilic double-comb diblock copolymers, Angew Chem Int Ed, 47, 8859, 10.1002/anie.200802834
Carrillo, 2006, Biofunctionalized block copolymer nanoparticles based on ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 44, 928, 10.1002/pola.21219
Liaw, 2000, Polynorbornene with cross-linkable side chains via ring-opening metathesis polymerization, Macromolecules, 33, 6925, 10.1021/ma000025i
Liaw, 2005, Novel active ester-bridged copolynorbornene materials containing terminal functional hydroxyl, amino, methacryloyl, or ammonium groups via ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 43, 4233, 10.1002/pola.20766
Liaw, 2006, Effects of the architecture and environment on polymeric molecular assemblies of novel amphiphilic diblock copolynorbornenes with narrow polydispersity via living ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 44, 2901, 10.1002/pola.21397
Liaw, 2007, Amphiphilic macromolecular nanostructure materials derived from 5-(octanoate methyl)bicyclo[2.2.1]hept-2-ene and 5-(phthalimide methyl)bicyclo[2.2.1]hept-2-ene via ring-opening metathesis copolymerization, Polymer, 48, 3694, 10.1016/j.polymer.2007.04.034
Xie, 2008, Synthesis and self-assembly of functionalized cyclooctene block copolymers via ROMP, Macromol Chem Phys, 209, 544, 10.1002/macp.200700452
Wei, 2017, Ring opening metathesis polymerization of triazole-bearing cyclobutenes: diblock copolymer synthesis and evaluation of the effect of side group size on polymerization kinetics, J Polym Sci Part A: Polym Chem, 55, 1929, 10.1002/pola.28565
Maeda, 2000, Tumor vascular permeability and the EPR effect in macromolecular therapeutics: a review, J Control Release, 65, 271, 10.1016/S0168-3659(99)00248-5
Schmaljohann, 2006, Thermo- and pH-responsive polymers in drug delivery, Adv Drug Deliv Rev, 58, 1655, 10.1016/j.addr.2006.09.020
Stuart, 2010, Emerging applications of stimuli-responsive polymer materials, Nat Mater, 9, 101, 10.1038/nmat2614
Roy, 2013, New directions in thermoresponsive polymers, Chem Soc Rev, 42, 7214, 10.1039/c3cs35499g
Cheng, 2008, Association and structure of thermosensitive comblike block copolymers in aqueous solutions, Macromolecules, 41, 4824, 10.1021/ma702580v
Bauer, 2010, The thermo responsive behavior of glycol functionalized ring opening metathesis polymers, J Polym Sci Part A: Polym Chem, 48, 2098, 10.1002/pola.23977
Stubenrauch, 2009, pH and ionic strength responsive polyelectrolyte block copolymer micelles prepared by ring opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 47, 1178, 10.1002/pola.23229
Pawar, 2015, ROMP-derived pyridylborate block copolymers: self-assembly, pH-responsive properties, and metal-containing nanostructures, Macromolecules, 48, 6508, 10.1021/acs.macromol.5b01216
Shao, 2014, Block and random copolymers bearing cholic acid and oligo(ethylene glycol) pendant groups: aggregation, thermosensitivity, and drug loading, Biomacromolecules, 15, 1837, 10.1021/bm5002262
Jia, 2015, Thermo- and pH-Responsive copolymers bearing cholic acid and oligo(ethylene glycol) pendants: self-assembly and pH-Controlled release, ACS Appl Mater Interfaces, 7, 24649, 10.1021/acsami.5b06909
Bell, 2015, Dye encapsulation in polynorbornene micelles, Langmuir, 31, 9707, 10.1021/acs.langmuir.5b01822
Zhang, 2018, Controlled ROMP synthesis of side-chain ferrocene and adamantane-containing diblock copolymer for the construction of redox-responsive micellar carriers, React Funct Polym, 132, 60, 10.1016/j.reactfunctpolym.2018.09.003
Liu, 2018, Controlled ROMP synthesis of ferrocene-containing amphiphilic dendronized diblock copolymers as redox-controlled polymer carriers, Macromol Chem Phys, 219, 10.1002/macp.201800273
Qiu, 2019, Ferrocene-containing amphiphilic polynorbornenes as biocompatible drug carriers, Polym Chem, 10, 2527, 10.1039/C9PY00332K
Delplace, 2014, Recent trends in the design of anticancer polymer prodrug nanocarriers, Polym Chem, 5, 1529, 10.1039/C3PY01384G
Bertin, 2005, High-density doxorubicin-conjugated polymeric nanoparticles via ring-opening metathesis polymerization, Chem Commun, 3793, 10.1039/b504643b
Watson, 2001, Toward polymeric anticancer drug cocktails from ring-opening metathesis polymerization, Macromolecules, 34, 3507, 10.1021/ma001916t
Smith, 2009, Synthesis and in vitro activity of ROMP-based polymer nanoparticles, J Mater Chem, 19, 2159, 10.1039/b817511j
Bertin, 2006, Multifunctional polymeric nanoparticles from diverse bioactive agents, J Am Chem Soc, 128, 4168, 10.1021/ja056378k
Krovi, 2010, “Clickable” polymer nanoparticles: a modular scaffold for surface functionalization, Chem Commun, 46, 5277, 10.1039/c0cc00232a
Krovi, 2012, Improved anti-proliferative effect of doxorubicin-containing polymer nanoparticles upon surface modification with cationic groups, J Mater Chem, 22, 25463, 10.1039/c2jm35420a
Banga, 2017, Drug-loaded polymeric spherical nucleic acids: enhancing colloidal stability and cellular uptake of polymeric nanoparticles through DNA surface-functionalization, Biomacromolecules, 18, 483, 10.1021/acs.biomac.6b01563
Sutthasupa, 2016, Synthesis of diblock copolymers of indomethacin/aspartic acid conjugated norbornenes and characterization of their self-assembled nanostructures as drug carriers, Eur Polym J, 85, 211, 10.1016/j.eurpolymj.2016.10.029
Qiu, 2018, ROMP synthesis of benzaldehyde-containing amphiphilic block polynorbornenes used to conjugate drugs for pH-responsive release, React Funct Polym, 128, 1, 10.1016/j.reactfunctpolym.2018.03.010
Kimura, 2002, Aggregation behavior of amphiphilic phthalocyanine block copolymers, Langmuir, 18, 7683, 10.1021/la020275n
Sandholzer, 2008, Synthesis and self assembly of eosin functionalized amphiphilic block-random copolymers prepared by ring opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 46, 401, 10.1002/pola.22391
Miki, 2009, Ring-opening metathesis polymerization-based synthesis of ICG-Containing amphiphilic triblock copolymers for in vivo tumor imaging, Bioconjugate Chem, 20, 511, 10.1021/bc800449s
Sandholzer, 2009, Solution self-assembly of core-labeled block random-copolymers prepared by ring opening metathesis polymerization, Macromol Chem Phys, 210, 651, 10.1002/macp.200800549
Thompson, 2014, Labelling polymers and micellar nanoparticles via initiation, propagation and termination with ROMP, Polym Chem, 5, 1954, 10.1039/C3PY01338C
Parke, 2019, Highly fluorescent benzophosphole oxide block-copolymer micelles, Macromolecules, 52, 7477, 10.1021/acs.macromol.9b01661
Chen, 2004, Ruthenium bipyridine-containing polymers and block copolymers via ring-opening metathesis polymerization, Macromolecules, 37, 5866, 10.1021/ma049450s
Chen, 2005, Biotin-terminated ruthenium bipyridine ring-opening metathesis polymerization copolymers: synthesis and self-assembly with streptavidin, Macromolecules, 38, 1084, 10.1021/ma0478714
Platonova, 2018, Functionalized polynorbornenes with oligoether units and luminophoric iridium(III) complexes in side chains. Synthesis, photophysical, and biological properties, Russ J Gen Chem, 88, 731, 10.1134/S1070363218040175
Niedermair, 2009, Solution self-assembly and photophysics of platinum complexes containing amphiphilic triblock random copolymers prepared by ROMP, Organometallics, 28, 2888, 10.1021/om900083n
Proetto, 2019, Phosphorescent Pt(ii) complexes spatially arrayed in micellar polymeric nanoparticles providing dual readout for multimodal imaging, Chem Commun, 55, 501, 10.1039/C8CC06347H
Parke, 2018, Aerobic solid state red phosphorescence from benzobismole monomers and patternable self-assembled block copolymers, Angew Chem Int Ed, 57, 14841, 10.1002/anie.201809357
Parke, 2018, Understanding the origin of phosphorescence in Bismoles: a synthetic and computational study, Inorg Chem, 57, 7536, 10.1021/acs.inorgchem.8b00149
Proetto, 2014, Dynamics of soft nanomaterials captured by transmission Electron microscopy in liquid water, J Am Chem Soc, 136, 1162, 10.1021/ja408513m
Randolph, 2016, Polymeric Gd-DOTA amphiphiles form spherical and fibril-shaped nanoparticle MRI contrast agents, Chem Sci, 7, 4230, 10.1039/C6SC00342G
Li, 2016, Polycatechol nanoparticle MRI contrast agents, Small, 12, 668, 10.1002/smll.201502754
Lutz, 2008, Modern trends in polymer bioconjugates design, Prog Polym Sci, 33, 1, 10.1016/j.progpolymsci.2007.07.005
Carneiro, 2012, Stimuli-responsive organization of block copolymers on DNA nanotubes, Chem Sci, 3, 1980, 10.1039/c2sc01065h
Rush, 2013, Nuclease-resistant DNA via high-density packing in polymeric micellar nanoparticle coronas, ACS Nano, 7, 1379, 10.1021/nn305030g
Rush, 2014, Intracellular mRNA regulation with self-assembled locked nucleic acid polymer nanoparticles, J Am Chem Soc, 136, 7615, 10.1021/ja503598z
Roloff, 2017, Micellar thrombin-binding aptamers: reversible nanoscale anticoagulants, J Am Chem Soc, 139, 16442, 10.1021/jacs.7b07799
Roloff, 2018, Self-transfecting micellar RNA: modulating nanoparticle cell interactions via high density display of small molecule ligands on micelle coronas, Bioconjugate Chem, 29, 126, 10.1021/acs.bioconjchem.7b00657
Keum, 2009, Enhanced resistance of DNA nanostructures to enzymatic digestion, Chem Commun, 7036, 10.1039/b917661f
Giljohann, 2010, Gold nanoparticles for biology and medicine, Angew Chem Int Ed, 49, 3280, 10.1002/anie.200904359
Hamblin, 2012, Rolling circle amplification-templated DNA nanotubes show increased stability and cell penetration ability, J Am Chem Soc, 134, 2888, 10.1021/ja2107492
Dwars, 2005, Reactions in micellar systems, Angew Chem Int Ed, 44, 7174, 10.1002/anie.200501365
Pawar, 2009, Ring-opening metathesis polymerization-derived, polymer-bound Cu-catalysts for click-chemistry and hydrosilylation reactions under micellar conditions, Dalton Trans, 9043, 10.1039/b909180g
Pawar, 2010, Ring opening metathesis polymerization-derived block copolymers bearing chelating ligands: synthesis, metal immobilization and use in hydroformylation under micellar conditions, Beilstein J Org Chem, 6, 1
Liu, 2011, Poly(norbornene) block copolymer-based shell cross-linked micelles with Co(iii)–salen cores, Polym Chem, 2, 1964, 10.1039/c1py00151e
Öztürk, 2018, Olefin metathesis in air using latent ruthenium catalysts: imidazole substituted amphiphilic hydrogenated ROMP polymers providing nano-sized reaction spaces in water, Catal Sci Technol, 8, 5807, 10.1039/C8CY01818A
Venkataraman, 2011, The effects of polymeric nanostructure shape on drug delivery, Adv Drug Deliv Rev, 63, 1228, 10.1016/j.addr.2011.06.016
Hinde, 2017, Pair correlation microscopy reveals the role of nanoparticle shape in intracellular transport and site of drug release, Nat Nanotech, 12, 81, 10.1038/nnano.2016.160
Tao, 2011, Shape-specific polymeric nanomedicine: emerging opportunities and challenges, Exp Biol Med, 236, 20, 10.1258/ebm.2010.010243
Foster, 2019, Getting into shape: reflections on a new generation of cylindrical nanostructures’ self-assembly using polymer building blocks, J Am Chem Soc, 141, 2742, 10.1021/jacs.8b08648
Bazzi, 2002, Adenine-containing block copolymers via ring-opening metathesis polymerization: synthesis and self-assembly into rod morphologies, Macromolecules, 35, 9617, 10.1021/ma025676o
Rideau, 2018, Liposomes and polymersomes: a comparative review towards cell mimicking, Chem Soc Rev, 47, 8572, 10.1039/C8CS00162F
Mane, 2012, Reversible pH- and lipid-sensitive vesicles from amphiphilic norbornene-derived thiobarbiturate homopolymers, ACS Macro Lett, 1, 482, 10.1021/mz2002092
Mane, 2012, Amphiphilic homopolymer vesicles as unique nano-carriers for cancer therapy, Macromolecules, 45, 8037, 10.1021/ma301644m
Shin, 2018, Polymer self-assembly into unique fractal nanostructures in solution by a one-shot synthetic procedure, J Am Chem Soc, 140, 475, 10.1021/jacs.7b11630
Charvet, 2009, Block-copolymer-Nanowires with nanosized domain segregation and high charge mobilities as stacked p/n heterojunction arrays for repeatable photocurrent switching, J Am Chem Soc, 131, 18030, 10.1021/ja907414z
Sheiko, 2008, Cylindrical molecular brushes: synthesis, characterization, and properties, Prog Polym Sci, 33, 759, 10.1016/j.progpolymsci.2008.05.001
Johnson, 2010, Core-clickable PEG-Branch-Azide bivalent-bottle-Brush polymers by ROMP: grafting-Through and clicking-to, J Am Chem Soc, 133, 559, 10.1021/ja108441d
Johnson, 2010, Drug-loaded, bivalent-bottle-brush polymers by graft-through ROMP, Macromolecules, 43, 10326, 10.1021/ma1021506
Yu, 2013, Well-defined degradable brush polymer–drug conjugates for sustained delivery of paclitaxel, Mol Pharm, 10, 867, 10.1021/mp3004868
Sowers, 2014, Redox-responsive branched-bottlebrush polymers for in vivo MRI and fluorescence imaging, Nat Commun, 5, 10.1038/ncomms6460
Müllner, 2016, Molecular polymer brushes in nanomedicine, Macromol Chem Phys, 217, 2209, 10.1002/macp.201600086
Matyjaszewski, 2009, Nanostructured functional materials prepared by atom transfer radical polymerization, Nat Chem, 1, 276, 10.1038/nchem.257
Dalsin, 2014, Molecular weight dependence of zero-shear viscosity in atactic polypropylene bottlebrush polymers, ACS Macro Lett, 3, 423, 10.1021/mz500082h
Dalsin, 2015, Linear rheology of polyolefin-based bottlebrush polymers, Macromolecules, 48, 4680, 10.1021/acs.macromol.5b01153
Huang, 2009, Well-defined organic nanotubes from multicomponent bottlebrush copolymers, J Am Chem Soc, 131, 6880, 10.1021/ja901936g
Rzayev, 2012, Molecular Bottlebrushes: New opportunities in nanomaterials fabrication, ACS Macro Lett, 1, 1146, 10.1021/mz300402x
Pang, 2016, 1D nanocrystals with precisely controlled dimensions, compositions, and architectures, Science, 353, 1268, 10.1126/science.aad8279
Daniel, 2015, Solvent-free, supersoft and superelastic bottlebrush melts and networks, Nat Mater, 15, 183, 10.1038/nmat4508
Miyake, 2012, Precisely tunable photonic crystals from rapidly self-assembling brush block copolymer blends, Angew Chem Int Ed, 51, 11246, 10.1002/anie.201205743
Sveinbjörnsson, 2012, Rapid self-assembly of brush block copolymers to photonic crystals, Proc Natl Acad Sci USA, 109, 14332, 10.1073/pnas.1213055109
Barner, 2007, Complex macromolecular architectures by reversible addition fragmentation chain transfer chemistry: theory and practice, Macromol Rapid Commun, 28, 539, 10.1002/marc.200600805
Barner-Kowollik, 2006, Synthesis of Star Polymers using RAFT Polymerization: What is Possible?, Aust J Chem, 59, 719, 10.1071/CH06297
Foster, 2017, Graft polymer synthesis by RAFT transfer‐to, J Polym Sci Part A: Polym Chem, 55, 2865, 10.1002/pola.28621
Kim, 2013, Synthesis of dendronized polymers via macromonomer approach by living ROMP and their characterization: from rod-like homopolymers to block and gradient copolymers, Macromolecules, 46, 5905, 10.1021/ma401132u
Peterson, 2018, Mechanochemical degradation of denpols: synthesis and ultrasound-induced chain scission of polyphenylene-based dendronized polymers, J Am Chem Soc, 140, 8599, 10.1021/jacs.8b05110
Le, 2013, Cyclobutenyl macromonomers: synthetic strategies and ring-opening metathesis polymerization, Eur Polym J, 49, 972, 10.1016/j.eurpolymj.2013.01.008
Shi, 2011, Synthesis of amphiphilic poly(cyclooctene)-graft-poly(ethylene glycol) copolymers via ROMP and its surface properties, Polym Chem, 2, 679, 10.1039/C0PY00353K
Teo, 2015, Importance of macromonomer quality in the ring-opening metathesis polymerization of macromonomers, Macromolecules, 48, 5656, 10.1021/acs.macromol.5b01176
Murphy, 2007, Precise synthesis of poly(macromonomer)s containing sugars by repetitive ROMP and their attachments to poly(ethylene glycol): synthesis, TEM analysis and their properties as amphiphilic block fragments, Chem Eur J, 13, 8985, 10.1002/chem.200700291
Li, 2010, Synthesis of hetero-grafted amphiphilic diblock molecular brushes and their self-assembly in aqueous medium, Macromolecules, 43, 1182, 10.1021/ma902513n
ter Huurne, 2015, The coil-to-Globule transition of single-chain polymeric nanoparticles with a chiral internal secondary structure, Macromolecules, 48, 3949, 10.1021/acs.macromol.5b00604
Shibuya, 2017, Mikto-brush-Arm star polymers via cross-linking of dissimilar bottlebrushes: synthesis and solution morphologies, ACS Macro Lett, 6, 963, 10.1021/acsmacrolett.7b00529
Alaboalirat, 2019, Amphiphilic bottlebrush block copolymers: analysis of aqueous self-assembly by small-angle neutron scattering and surface tension measurements, Macromolecules, 52, 465, 10.1021/acs.macromol.8b02366
Sutthasupa, 2019, Thermo-responsive micelles prepared from brush-like block copolymers of proline- and oligo(lactide)-functionalized norbornenes, Polymer, 177, 178, 10.1016/j.polymer.2019.05.072
Li, 2019, Synthesis of polypeptoid-polycaprolactone-Polytetrahydrofuran heterograft molecular polymer brushes via a combination of Janus polymerization and ROMP, Macromol Rapid Commun, 40, 10.1002/marc.201800905
Wang, 2019, Janus particles with tunable shapes prepared by asymmetric bottlebrush block copolymers, Polym Chem, 10, 372, 10.1039/C8PY01467A
Su, 2017, Syntheses of triblock bottlebrush polymers through sequential ROMPs: expanding the functionalities of molecular brushes, J Polym Sci Part A: Polym Chem, 55, 2966, 10.1002/pola.28647
Cheng, 2006, Tandem synthesis of core−shell brush copolymers and their transformation to peripherally cross-linked and hollowed nanostructures, J Am Chem Soc, 128, 6808, 10.1021/ja061892r
Xiao, 2017, Donut-shaped nanoparticles templated by cyclic bottlebrush polymers, Macromolecules, 50, 6762, 10.1021/acs.macromol.7b01512
Ma, 2019, Versatile preparation of vesicle from amphiphilic bottlebrush block copolymers, React Funct Polym, 134, 166, 10.1016/j.reactfunctpolym.2018.11.011
Dong, 2019, Experiments and simulations of complex sugar-based coil−Brush block polymer nanoassemblies in aqueous solution, ACS Nano, 13, 5147, 10.1021/acsnano.8b08811
Ma, 2020, Self-assembly of bottlebrush block copolymers into triply periodic nanostructures in a dilute solution, Macromolecules, 53, 711, 10.1021/acs.macromol.9b01662
Müllner, 2016, Cylindrical polymer brushes – anisotropic building blocks, unimolecular templates and particulate nanocarriers, Polymer, 98, 389, 10.1016/j.polymer.2016.03.076
Quémener, 2005, Synthesis of acid-sensitive latices by ring-opening metathesis polymerization, J Polym Sci Part A: Polym Chem, 43, 217, 10.1002/pola.20513
Pichavant, 2011, Synthesis of pH-Sensitive particles for local delivery of an antibiotic via dispersion ROMP, Macromolecules, 44, 7879, 10.1021/ma2015479
Collette, 2013, Easy and effective method to produce functionalized particles for cellular uptake, J Polym Sci Part A: Polym Chem, 51, 176, 10.1002/pola.26357
Gueugnon, 2013, Nanoparticles produced by ring-opening metathesis polymerization using norbornenyl-poly(ethylene oxide) as a ligand-free generic platform for highly selective in vivo tumor targeting, Biomacromolecules, 14, 2396, 10.1021/bm400516b
Pichavant, 2016, Vancomycin functionalized nanoparticles for bactericidal biomaterial surfaces, Biomacromolecules, 17, 1339, 10.1021/acs.biomac.5b01727
Pichavant, 2018, Thermosensitive polynorbornene poly(ethylene oxide) nanoparticles loaded with oligoDNAs: an innovative approach for acting on cancer-associated pain, Polym Chem, 9, 362, 10.1039/C7PY01889D
Nguyen, 2014, Self-assembled nanoparticles from thiol functionalized liquid crystalline brush block copolymers for dual encapsulation of doxorubicin and gold nanoparticles, Polym Chem, 5, 2774, 10.1039/C3PY01636F
Tran, 2014, Long circulating self-assembled nanoparticles from cholesterol-containing brush-like block copolymers for improved drug delivery to tumors, Biomacromolecules, 15, 4363, 10.1021/bm5013822
Deshmukh, 2013, Interplay between liquid crystalline order and microphase segregation on the self-assembly of side-chain liquid crystalline brush block copolymers, Macromolecules, 46, 8245, 10.1021/ma401448j
Unsal, 2017, Interplay between molecular packing, drug loading, and core cross-linking in bottlebrush copolymer micelles, Macromolecules, 50, 1342, 10.1021/acs.macromol.6b02182
Yao, 2017, Efficient codelivery of paclitaxel and curcumin by novel bottlebrush copolymer-based micelles, Mol Pharm, 14, 2378, 10.1021/acs.molpharmaceut.7b00278
Ku, 2011, Controlling and switching the morphology of micellar nanoparticles with enzymes, J Am Chem Soc, 133, 8392, 10.1021/ja2004736
Hahn, 2013, Polymerization of a peptide-based enzyme substrate, Chem Commun, 49, 2873, 10.1039/c3cc40472b
Ungerleider, 2017, Enzyme-targeted nanoparticles for delivery to ischemic skeletal muscle, Polym Chem, 8, 5212, 10.1039/C7PY00568G
Veccharelli, 2016, Dual responsive polymeric nanoparticles prepared by direct functionalization of polylactic acid-based polymers via graft-from ring opening metathesis polymerization, Chem Commun, 52, 567, 10.1039/C5CC07882B
Zhao, 2018, Synthesis of redox-responsive core cross-linked micelles carrying optically active helical poly(phenyl isocyanide) arms and their applications in drug delivery, ACS Macro Lett, 7, 1073, 10.1021/acsmacrolett.8b00610
Luo, 2014, Prodrug-based nanoparticulate drug delivery strategies for cancer therapy, Trends Pharmacol Sci, 35, 556, 10.1016/j.tips.2014.09.008
Bao, 2018, Self-stabilized, hydrophobic or PEGylated paclitaxel polymer prodrug nanoparticles for cancer therapy, Polym Chem, 9, 687, 10.1039/C7PY01918A
Zou, 2011, pH-Sensitive brush polymer-drug conjugates by ring-opening metathesis copolymerization, Chem Commun, 47, 4493, 10.1039/c0cc05531j
Zou, 2015, Well-defined diblock brush polymer–drug conjugates for sustained delivery of paclitaxel, Biomater Sci, 3, 1078, 10.1039/C4BM00458B
Rao, 2012, Norbornene derived doxorubicin copolymers as drug carriers with pH responsive hydrazone linker, Biomacromolecules, 13, 221, 10.1021/bm201478k
Mane, 2012, A unique polymeric nano-carrier for anti-tuberculosis therapy, J Mater Chem, 22, 19639, 10.1039/c2jm33860b
Daniel, 2016, Dual-responsive nanoparticles release cargo upon exposure to matrix metalloproteinase and reactive oxygen species, Chem Commun, 52, 2126, 10.1039/C5CC09164K
Proetto, 2018, Tumor retention of enzyme-responsive Pt(II) drug-loaded nanoparticles imaged by nanoscale secondary ion mass spectrometry and fluorescence microscopy, ACS Cent Sci, 4, 1477, 10.1021/acscentsci.8b00444
Liu, 2012, “Brush-First” Method for the Parallel Synthesis of Photocleavable, Nitroxide-Labeled Poly(ethylene glycol) Star Polymers, J Am Chem Soc, 134, 16337, 10.1021/ja3067176
Burts, 2014, Brush-first synthesis of core-photodegradable miktoarm star polymers via ROMP: towards photoresponsive self-assemblies, Macromol Rapid Commun, 35, 168, 10.1002/marc.201300618
Burts, 2014, Brush-first and click: efficient synthesis of nanoparticles that degrade and release doxorubicin in response to light, Photochem Photobiol, 90, 380, 10.1111/php.12182
Liao, 2014, A convergent synthetic platform for single-nanoparticle combination cancer therapy: ratiometric loading and controlled release of cisplatin, doxorubicin, and camptothecin, J Am Chem Soc, 136, 5896, 10.1021/ja502011g
Gao, 2014, Synthesis of acid-labile PEG and PEG-doxorubicin-conjugate nanoparticles via brush-first ROMP, ACS Macro Lett, 3, 854, 10.1021/mz5004097
Nguyen, 2017, Nitroxide-based macromolecular contrast agents with unprecedented transverse relaxivity and stability for magnetic resonance imaging of tumors, ACS Cent Sci, 3, 800, 10.1021/acscentsci.7b00253
Alvaradejo, 2019, Polyoxazoline-based bottlebrush and brush-arm star polymers via ROMP: syntheses and applications as organic radical contrast agents, ACS Macro Lett, 8, 473, 10.1021/acsmacrolett.9b00016
Xu, 2013, Novel drug carriers: from grafted polymers to cross-linked vesicles, Chem Commun, 49, 33, 10.1039/C2CC37319J
Fu, 2015, Degradable cross-linked polymer vesicles for the efficient delivery of platinum drugs, Polym Chem, 6, 35, 10.1039/C4PY01123F
Elsabahy, 2012, Design of polymeric nanoparticles for biomedical delivery applications, Chem Soc Rev, 41, 2545, 10.1039/c2cs15327k
Kim, 2007, Polymers for bioimaging, Prog Polym Sci, 32, 1031, 10.1016/j.progpolymsci.2007.05.016
Zhong, 2014, Ligand-directed active tumor-targeting polymeric nanoparticles for cancer chemotherapy, Biomacromolecules, 15, 1955, 10.1021/bm5003009
Wolfbeis, 2015, An overview of nanoparticles commonly used in fluorescent bioimaging, Chem Soc Rev, 44, 4743, 10.1039/C4CS00392F
Abd Ellah, 2017, Surface functionalization of polymeric nanoparticles for tumor drug delivery: approaches and challenges, Expert Opin Drug Deliv, 14, 201, 10.1080/17425247.2016.1213238
Sankaran, 2010, Ring-opening metathesis polymers for biodetection and signal amplification: synthesis and self-assembly, Macromolecules, 43, 5530, 10.1021/ma100234j
Metera, 2012, Luminescent iridium(III)-containing block copolymers: self-assembly into biotin-labeled micelles for biodetection assays, ACS Macro Lett, 1, 954, 10.1021/mz3001644
Tefashe, 2013, Electrogenerated chemiluminescence of iridium-containing ROMP block copolymer and self-assembled micelles, Langmuir, 29, 12866, 10.1021/la402518v
Miki, 2010, Ring-opening metathesis polymerization-based synthesis of polymeric nanoparticles for enhanced tumor imaging in vivo: synergistic effect of folate-receptor targeting and PEGylation, Biomaterials, 31, 934, 10.1016/j.biomaterials.2009.10.005
Miki, 2011, High-contrast fluorescence imaging of tumors in vivo using nanoparticles of amphiphilic brush-like copolymers produced by ROMP, Angew Chem Int Ed, 50, 6567, 10.1002/anie.201101005
Miki, 2011, Influence of side chain length on fluorescence intensity of ROMP-based polymeric nanoparticles and their tumor specificity in in-vivo tumor imaging, Small, 7, 3536, 10.1002/smll.201101637
Chien, 2013, Enzyme-directed assembly of nanoparticles in tumors monitored by in vivo whole animal imaging and ex vivo super-resolution fluorescence imaging, J Am Chem Soc, 135, 18710, 10.1021/ja408182p
Chien, 2013, Enzyme-directed assembly of a nanoparticle probe in tumor tissue, Adv Mater, 25, 3599, 10.1002/adma.201300823
Blum, 2014, Peptides displayed as high density brush polymers resist proteolysis and retain bioactivity, J Am Chem Soc, 136, 15422, 10.1021/ja5088216
Nguyen, 2015, Enzyme-responsive nanoparticles for targeted accumulation and prolonged retention in heart tissue after myocardial infarction, Adv Mater, 27, 5547, 10.1002/adma.201502003
Blum, 2016, Activating peptides for cellular uptake via polymerization into high density brushes, Chem Sci, 7, 989, 10.1039/C5SC03417E
Adamiak, 2017, Peptide brush polymers and nanoparticles with enzyme-regulated structure and charge for inducing or evading macrophage cell uptake, ACS Nano, 11, 9877, 10.1021/acsnano.7b03686
Kwak, 2011, Nucleic acid amphiphiles: synthesis and self-assembled nanostructures, Chem Soc Rev, 40, 5745, 10.1039/c1cs15138j
Kundu, 2017, Nucleic acid based polymer and nanoparticle conjugates: synthesis, properties and applications, Prog Mater Sci, 88, 136, 10.1016/j.pmatsci.2017.04.001
Sun, 2019, Recent advances in amphiphilic polymer–oligonucleotide nanomaterials via living/controlled polymerization technologies, Bioconjugate Chem, 30, 1889, 10.1021/acs.bioconjchem.9b00166
O’Reilly, 2017, The evolution of DNA-templated synthesis as a tool for materials discovery, Acc Chem Res, 50, 2496, 10.1021/acs.accounts.7b00280
Chien, 2010, Programmable shape-shifting micelles, Angew Chem Int Ed, 49, 5076, 10.1002/anie.201000265
Chien, 2011, A morphology-dependent bio-organic template for inorganic nanowire synthesis, Small, 7, 2041, 10.1002/smll.201101014
Chien, 2011, DNA–nanoparticle micelles as supramolecular fluorogenic substrates enabling catalytic signal amplification and detection by DNAzyme probes, Chem Commun, 47, 167, 10.1039/C0CC02291H
James, 2014, Poly(oligonucleotide), J Am Chem Soc, 136, 11216, 10.1021/ja503142s
Uhlenheuer, 2010, Combining supramolecular chemistry with biology, Chem Soc Rev, 39, 2817, 10.1039/b820283b
PetkauMilroy, 2013, Supramolecular chemical biology; bioactive synthetic self-assemblies, Org Biomol Chem, 11, 219, 10.1039/C2OB26790J
Dupont, 2009, Self-assembled ABC triblock copolymer double and triple helices, Angew Chem Int Ed, 48, 6144, 10.1002/anie.200901517
Gröschel, 2012, Precise hierarchical self-assembly of multicompartment micelles, Nat Commun, 3, 10.1038/ncomms1707
Lunn, 2016, Microfibres and macroscopic films from the coordination-driven hierarchical self-assembly of cylindrical micelles, Nat Commun, 7, 10.1038/ncomms12371
Li, 2011, Dynamic cylindrical assembly of triblock copolymers by a hierarchical process of covalent and supramolecular interactions, J Am Chem Soc, 133, 1228, 10.1021/ja109191z
Onbulak, 2017, Synthesis and one-dimensional assembly of cylindrical polymer nanoparticles prepared from tricomponent bottlebrush copolymers, J Polym Sci Part A: Polym Chem, 55, 3868, 10.1002/pola.28771
Lu, 2017, Ruthenium promoted on-DNA ring-closing metathesis and cross-metathesis, Bioconjugate Chem, 28, 1625, 10.1021/acs.bioconjchem.7b00292
Manning, 1997, Synthesis of sulfated neoglycopolymers: selective P-Selectin inhibitors, J Am Chem Soc, 119, 3161, 10.1021/ja964046x
Kanai, 1997, Varying the size of multivalent ligands: the dependence of concanavalin a binding on neoglycopolymer length, J Am Chem Soc, 119, 9931, 10.1021/ja972089n
Lynn, 1996, Living ring-opening metathesis polymerization in aqueous media catalyzed by well-defined ruthenium carbene complexes, J Am Chem Soc, 118, 784, 10.1021/ja950327d
Tomasek, 2013, Olefin metathesis in aqueous media, Green Chem, 15, 2317, 10.1039/c3gc41042k
Novak, 1988, The ring opening metathesis polymerization of 7-oxabicyclo[2.2.1]hept-5-ene derivatives: a new acyclic polymeric ionophore, J Am Chem Soc, 110, 960, 10.1021/ja00211a043
Novak, 1988, Catalytic organometallic chemistry in water: the aqueous ring-opening metathesis polymerization of 7-oxanorbornene derivatives, J Am Chem Soc, 110, 7542, 10.1021/ja00230a047
Hillmyer, 1992, Aqueous ring-opening metathesis polymerization of carboximide-functionalized 7-oxanorbornenes, Macromolecules, 25, 3345, 10.1021/ma00039a004
Trnka, 2000, The development of L2X2RuCHR olefin metathesis catalysts: an organometallic success story, Acc Chem Res, 34, 18, 10.1021/ar000114f
Mohr, 1996, Synthesis of water-soluble, aliphatic phosphines and their application to well-defined ruthenium olefin metathesis catalysts, Organometallics, 15, 4317, 10.1021/om9603373
Jordan, 2007, Small-molecule N-heterocyclic-carbene-containing olefin-metathesis catalysts for use in water, Angew Chem Int Ed, 46, 5152, 10.1002/anie.200701258
Hong, 2006, Highly active water-soluble olefin metathesis catalyst, J Am Chem Soc, 128, 3508, 10.1021/ja058451c
Grubbs, 1995, Transition metal catalyzed reactions of olefins in Water: olefin metathesis and isomerization., 15
Samanta, 2008, A synthesis of PEG- and phosphorylcholine-substituted pyridines to afford water-soluble ruthenium benzylidene metathesis catalysts, Macromolecules, 41, 530, 10.1021/ma7019732
Dunbar, 2011, pH-responsive ruthenium-based olefin metathesis catalysts: controlled ring-opening metathesis polymerization in alcoholic and aqueous media upon acid addition, Organometallics, 30, 199, 10.1021/om100633f
Michrowska, 2006, A green catalyst for green chemistry: synthesis and application of an olefin metathesis catalyst bearing a quaternary ammonium group, Green Chem, 8, 685, 10.1039/B605138C
Binder, 2007, Salicylaldimine ruthenium alkylidene complexes: metathesis catalysts tuned for protic solvents, Adv Synth Catal, 349, 395, 10.1002/adsc.200600264
Adlhart, 2004, Mechanism and activity of ruthenium olefin metathesis catalysts: the role of ligands and substrates from a theoretical perspective, J Am Chem Soc, 126, 3496, 10.1021/ja0305757
Lynn, 1998, Living ring-opening metathesis polymerization in water, J Am Chem Soc, 120, 1627, 10.1021/ja9736323
Michrowska, 2004, Nitro-substituted hoveyda−Grubbs ruthenium carbenes: enhancement of catalyst activity through electronic activation, J Am Chem Soc, 126, 9318, 10.1021/ja048794v
Engle, 2015, Origins of initiation rate differences in ruthenium olefin metathesis catalysts containing chelating benzylidenes, J Am Chem Soc, 137, 5782, 10.1021/jacs.5b01144
Binder, 2007, Olefin metathesis in homogeneous aqueous media catalyzed by conventional ruthenium catalysts, Org Lett, 9, 4885, 10.1021/ol7022505
Gallivan, 2005, A neutral, water-soluble olefin metathesis catalyst based on an N-heterocyclic carbene ligand, Tetrahedron Lett, 46, 2577, 10.1016/j.tetlet.2005.02.096
Wakamatsu, 2002, A new highly efficient ruthenium metathesis catalyst, Angew Chem Int Ed, 41, 2403, 10.1002/1521-3773(20020703)41:13<2403::AID-ANIE2403>3.0.CO;2-F
Dunne, 2003, A highly efficient olefin metathesis initiator: improved synthesis and reactivity studies, Tetrahedron Lett, 44, 2733, 10.1016/S0040-4039(03)00346-0
Canning, 2016, A critical appraisal of RAFT-Mediated polymerization-induced self-assembly, Macromolecules, 49, 1985, 10.1021/acs.macromol.5b02602
Warren, 2014, Polymerization-induced self-assembly of block copolymer nano-objects via RAFT aqueous dispersion polymerization, J Am Chem Soc, 136, 10174, 10.1021/ja502843f
Jones, 2016, Addition of water to an alcoholic RAFT PISA formulation leads to faster kinetics but limits the evolution of copolymer morphology, Polym Chem, 7, 851, 10.1039/C5PY01795E
Zhang, 2019, Combining the power of heat and light: temperature-programmed photoinitiated RAFT dispersion polymerization to tune polymerization-induced self-assembly, Polym Chem, 10, 3902, 10.1039/C9PY00534J
Tan, 2015, Photo-PISA: shedding light on polymerization-induced self-assembly, ACS Macro Lett, 4, 1249, 10.1021/acsmacrolett.5b00748
Tan, 2017, Enzyme-assisted photoinitiated polymerization-induced self-assembly: an oxygen-tolerant method for preparing block copolymer nano-objects in open vessels and multiwell plates, Macromolecules, 50, 5798, 10.1021/acs.macromol.7b01219
Tan, 2018, Enzyme-PISA: an efficient method for preparing well-defined polymer nano-objects under mild conditions, Macromol Rapid Commun, 39, 10.1002/marc.201700871
Liu, 2017, In situ growth of self-assembled protein–Polymer nanovesicles for enhanced intracellular protein delivery, ACS Appl Mater Interfaces, 9, 2023, 10.1021/acsami.6b14132
Varlas, 2019, Tuning the membrane permeability of polymersome nanoreactors developed by aqueous emulsion polymerization-induced self-assembly, Nanoscale, 11, 12643, 10.1039/C9NR02507C
TorresRocha, 2019, Polymerization-induced self-assembly (PISA) of 1,5-Cyclooctadiene using ring opening metathesis polymerization, Macromol Rapid Commun, 40
Varlas, 2019, Predicting monomers for use in aqueous ring-opening metathesis polymerization-induced self-assembly, ACS Macro Lett, 8, 466, 10.1021/acsmacrolett.9b00117
Yoon, 2012, One-pot in situ fabrication of stable nanocaterpillars directly from polyacetylene diblock copolymers synthesized by mild ring-opening metathesis polymerization, J Am Chem Soc, 134, 14291, 10.1021/ja305150c
Shin, 2015, Simple preparation of various nanostructures via in situ nanoparticlization of polyacetylene blocklike copolymers by one-shot polymerization, Macromolecules, 48, 1390, 10.1021/ma502530x
Le, 2019, Ultra-fast synthesis of multivalent radical nanoparticles by ring-opening metathesis polymerization-induced self-assembly, Angew Chem Int Ed, 58, 4725, 10.1002/anie.201813434