Present and future of MOF research in the field of adsorption and molecular separation

Current Opinion in Chemical Engineering - Tập 20 - Trang 132-142 - 2018
Camille Petit1
1Department of Chemical Engineering, Barrer Centre, Imperial College London, SW7 2AZ, UK

Tài liệu tham khảo

Rouquerol, 2013 Farrusseng, 2011 Yang, 2013, Development of computational methodologies for metal–organic frameworks and their application in gas separations, Chem Rev, 113, 8261, 10.1021/cr400005f Coudert, 2016, Computational characterization and prediction of metal–organic framework properties, Coord Chem Rev, 307, 211, 10.1016/j.ccr.2015.08.001 Aspuru-Guzik, 2018, Materials acceleration platform—accelerating advanced energy materials discovery by integrating high-throughput methods with artificial intelligence Sartbaeva, 2006, The flexibility window in zeolites, Nat Mater, 5, 962, 10.1038/nmat1784 Li, 2009, Selective gas adsorption and separation in metal–organic frameworks, Chem Soc Rev, 38, 1477, 10.1039/b802426j Elsaidi, 2018, Flexibility in metal–organic frameworks: a fundamental understanding, Coord Chem Rev, 358, 125, 10.1016/j.ccr.2017.11.022 Murdock, 2014, Approaches for synthesizing breathing MOFs by exploiting dimensional rigidity, Coord Chem Rev, 258–259, 119, 10.1016/j.ccr.2013.09.006 Alhamami, 2014, A review on breathing behaviors of metal–organic-frameworks (MOFs) for gas adsorption, Materials, 7, 3198, 10.3390/ma7043198 Li, 2017, Recent advances in gas storage and separation using metal–organic frameworks, Mater Today, 21, 108, 10.1016/j.mattod.2017.07.006 Sumida, 2012, Carbon dioxide capture in metal–organic frameworks, Chem Rev, 112, 724, 10.1021/cr2003272 Trickett, 2017, The chemistry of metal–organic frameworks for CO2 capture, regeneration and conversion, Nat Rev Mater, 2, 17045, 10.1038/natrevmats.2017.45 Yu, 2017, CO2 capture and separations using MOFs: computational and experimental studies, Chem Rev, 117, 9674, 10.1021/acs.chemrev.6b00626 Caskey, 2008, Dramatic tuning of carbon dioxide uptake via metal substitution in a coordination polymer with cylindrical pores, J Am Chem Soc, 130, 10870, 10.1021/ja8036096 McDonald, 2015, Cooperative insertion of CO2 in diamine-appended metal–organic frameworks, Nature, 519, 303, 10.1038/nature14327 McDonald, 2012, Capture of carbon dioxide from air and flue gas in the alkylamine-appended metal–organic framework mmen-Mg2(dobpdc), J Am Chem Soc, 134, 7056, 10.1021/ja300034j Flaig, 2017, The chemistry of CO2 capture in an amine-functionalized metal–organic framework under dry and humid conditions, J Am Chem Soc, 139, 12125, 10.1021/jacs.7b06382 Li, 2016, Incorporation of alkylamine into metal–organic frameworks through a Brønsted acid–base reaction for CO2 capture, ChemSusChem, 9, 2832, 10.1002/cssc.201600768 Liao, 2015, Monodentate hydroxide as a super strong yet reversible active site for CO2 capture from high-humidity flue gas, Energy Environ Sci, 8, 1011, 10.1039/C4EE02717E Nugent, 2013, Porous materials with optimal adsorption thermodynamics and kinetics for CO2 separation, Nature, 495, 80, 10.1038/nature11893 Shekhah, 2014, Made-to-order metal–organic frameworks for trace carbon dioxide removal and air capture, Nat Commun, 5, 4228, 10.1038/ncomms5228 Shekhah, 2015, A facile solvent-free synthesis route for the assembly of a highly CO2 selective and H2S tolerant NiSIFSIX metal–organic framework, Chem Commun, 51, 13595, 10.1039/C5CC04487A Bui, 2018, Carbon capture and storage (CCS): the way forward, Energy Environ Sci, 10.1039/C7EE02342A Mounfield, 2016, Synergistic effects of water and SO2 on degradation of MIL-125 in the presence of acid gases, J Phys Chem C, 120, 27230, 10.1021/acs.jpcc.6b09264 Ebrahim, 2013, Interactions of NO2 with Zr-based MOF: effects of the size of organic linkers on NO2 adsorption at ambient conditions, Langmuir, 29, 168, 10.1021/la302869m Rezaei, 2015, SOx/NOx removal from flue gas streams by solid adsorbents: a review of current challenges and future directions, Energy Fuels, 29, 5467, 10.1021/acs.energyfuels.5b01286 Bhattacharyya, 2016, Interactions of SO2-containing acid gases with ZIF-8: structural changes and mechanistic investigations, J Phys Chem C, 120, 27221, 10.1021/acs.jpcc.6b09197 DeCoste, 2014, Metal–organic frameworks for air purification of toxic chemicals, Chem Rev, 114, 5695, 10.1021/cr4006473 Peterson, 2016, Extraordinary NO2 removal by the metal–organic framework UiO-66-NH2, Angew Chem Int Ed, 55, 6235, 10.1002/anie.201601782 Ebrahim, 2013, Ce(III) doped Zr-based MOFs as excellent NO2 adsorbents at ambient conditions, ACS Appl Mater Interf, 5, 10565, 10.1021/am402305u Petit, 2012, Reactive adsorption of acidic gases on MOF/graphite oxide composites, Micropor Mesopor Mater, 154, 107, 10.1016/j.micromeso.2011.09.012 Levasseur, 2010, Reactive adsorption of NO2 on copper-based metal–organic framework and graphite oxide/metal–organic framework composites, ACS Appl Mater Interf, 2, 3606, 10.1021/am100790v Sun, 2014, Computational screening of porous metal–organic frameworks and zeolites for the removal of SO2 and NOx from flue gases, AIChE J, 60, 2314, 10.1002/aic.14467 Barea, 2014, Toxic gas removal—metal–organic frameworks for the capture and degradation of toxic gases and vapours, Chem Soc Rev, 43, 5419, 10.1039/C3CS60475F Britt, 2008, Metal–organic frameworks with high capacity and selectivity for harmful gases, Proc Natl Acad Sci, 105, 11623, 10.1073/pnas.0804900105 Bloch, 2014, Reversible CO binding enables tunable CO/H2 and CO/N2 separations in metal–organic frameworks with exposed divalent metal cations, J Am Chem Soc, 136, 10752, 10.1021/ja505318p Sato, 2014, Self-accelerating CO sorption in a soft nanoporous crystal, Science, 343, 167, 10.1126/science.1246423 Reed, 2016, Reversible CO scavenging via adsorbate-dependent spin state transitions in an iron(II)–triazolate metal–organic framework, J Am Chem Soc, 138, 5594, 10.1021/jacs.6b00248 Gao, 2016, Chem Eng J, 290, 418, 10.1016/j.cej.2016.01.054 Shah, 2017, Hydrogen sulfide capture: from absorption in polar liquids to oxide, zeolite, and metal–organic framework adsorbents and membranes, Chem Rev, 117, 9755, 10.1021/acs.chemrev.7b00095 Jasuja, 2015, Evaluation of MOFs for air purification and air quality control applications: ammonia removal from air, Chem Eng Sci, 124, 118, 10.1016/j.ces.2014.08.050 Rieth, 2016, High and reversible ammonia uptake in mesoporous azolate metal–organic frameworks with open Mn, Co, and Ni sites, J Am Chem Soc, 138, 9401, 10.1021/jacs.6b05723 Moghadam, 2016, Efficient identification of hydrophobic MOFs: application in the capture of toxic industrial chemicals, J Mater Chem A, 4, 529, 10.1039/C5TA06472D Siu, 2016, Boron trifluoride gas adsorption in metal–organic frameworks, Inorg Chem, 55, 12110, 10.1021/acs.inorgchem.6b02273 Ethiraj, 2015, H2S interaction with HKUST-1 and ZIF-8 MOFs: a multitechnique study, Micropor Mesopor Mater, 207, 90, 10.1016/j.micromeso.2014.12.034 AbdulHalim, 2017, A fine-tuned metal–organic framework for autonomous indoor moisture control, J Am Chem Soc, 139, 10715, 10.1021/jacs.7b04132 Towsif Abtab, 2018, Reticular chemistry in action: a hydrolytically stable MOF capturing twice its weight in adsorbed water, Chemistry, 4, 94, 10.1016/j.chempr.2017.11.005 Rieth, 2017, Record atmospheric fresh water capture and heat transfer with a material operating at the water uptake reversibility limit, ACS Central Sci, 3, 668, 10.1021/acscentsci.7b00186 Furukawa, 2014, Water adsorption in porous metal–organic frameworks and related materials, J Am Chem Soc, 136, 4369, 10.1021/ja500330a Kim, 2017, Water harvesting from air with metal–organic frameworks powered by natural sunlight, Science, 356, 430, 10.1126/science.aam8743 Langmi, 2014, Hydrogen storage in metal–organic frameworks: a review, Electrochim Acta, 128, 368, 10.1016/j.electacta.2013.10.190 Simonyan, 1999, Molecular simulation of hydrogen adsorption in charged single-walled carbon nanotubes, J Chem Phys, 111, 9778, 10.1063/1.480313 Runcevski, 2016, Adsorption of two gas molecules at a single metal site in a metal–organic framework, Chem Commun, 52, 8251, 10.1039/C6CC02494G Dincǎ, 2006, Hydrogen storage in a microporous metal−organic framework with exposed Mn2+ coordination sites, J Am Chem Soc, 128, 16876, 10.1021/ja0656853 Thornton, 2017, Materials genome in action: identifying the performance limits of physical hydrogen storage, Chem Mater, 29, 2844, 10.1021/acs.chemmater.6b04933 Berenguer-Murcia, 2018, Hydrogen storage in porous materials: status, milestones, and challenges, Chem Rec, 10.1002/tcr.201700067 He, 2017, Porous metal–organic frameworks for fuel storage, Coord Chem Rev Peng, 2013, Methane storage in metal–organic frameworks: current records, surprise findings, and challenges, J Am Chem Soc, 135, 11887, 10.1021/ja4045289 Dietzel, 2009, Application of metal–organic frameworks with coordinatively unsaturated metal sites in storage and separation of methane and carbon dioxide, J Mater Chem, 19, 7362, 10.1039/b911242a Mason, 2014, Evaluating metal–organic frameworks for natural gas storage, Chem Sci, 5, 32, 10.1039/C3SC52633J Alezi, 2015, MOF crystal chemistry paving the way to gas storage needs: aluminum-based soc-MOF for CH4, O2, and CO2 storage, J Am Chem Soc, 137, 13308, 10.1021/jacs.5b07053 Lin, 2016, A metal–organic framework with a pore size/shape suitable for strong binding and close packing of methane, Angew Chem Int Ed, 55, 4674, 10.1002/anie.201511006 Mason, 2015, Methane storage in flexible metal–organic frameworks with intrinsic thermal management, Nature, 527, 357, 10.1038/nature15732 Tian, 2018, A sol–gel monolithic metal–organic framework with enhanced methane uptake, Nat Mater, 17, 174, 10.1038/nmat5050 Casco, 2015, High-pressure methane storage in porous materials: are carbon materials in the pole position?, Chem Mater, 959, 10.1021/cm5042524 Bloch, 2011, Selective binding of O2 over N2 in a redox–active metal–organic framework with open iron(II) coordination sites, J Am Chem Soc, 133, 14814, 10.1021/ja205976v Bloch, 2016, Hydrogen storage and selective, reversible O2 adsorption in a metal–organic framework with open chromium(II) sites, Angew Chem Int Ed, 55, 8605, 10.1002/anie.201602950 Murray, 2010, Highly-selective and reversible O2 binding in Cr3(1,3,5-benzenetricarboxylate)2, J Am Chem Soc, 132, 7856, 10.1021/ja1027925 Xiao, 2016, Selective, tunable O2 binding in cobalt(II)–triazolate/pyrazolate metal–organic frameworks, J Am Chem Soc, 138, 7161, 10.1021/jacs.6b03680 Haldar, 2016, 113Cd nuclear magnetic resonance as a probe of structural dynamics in a flexible porous framework showing selective O2/N2 and CO2/N2 adsorption, Inorg Chem, 55, 4166, 10.1021/acs.inorgchem.5b02873 Bachman, 2017, M2(m-dobdc) (M=Mn, Fe, Co, Ni) metal–organic frameworks as highly selective, high-capacity adsorbents for olefin/paraffin separations, J Am Chem Soc, 139, 15363, 10.1021/jacs.7b06397 Cadiau, 2016, A metal–organic framework-based splitter for separating propylene from propane, Science, 353, 137, 10.1126/science.aaf6323 Liao, 2015, Efficient purification of ethene by an ethane-trapping metal–organic framework, Nat Commun, 6, 8697, 10.1038/ncomms9697 Pires, 2017, Reverse selectivity of zeolites and metal–organic frameworks in the ethane/ethylene separation by adsorption, Sep Sci Technol, 52, 51, 10.1080/01496395.2016.1243130 Chen, 2018, An ethane-trapping MOF PCN-250 for highly selective adsorption of ethane over ethylene, Chem Eng Sci, 175, 110, 10.1016/j.ces.2017.09.032 Chen, 2015, Direct observation of Xe and Kr adsorption in a Xe-selective microporous metal–organic framework, J Am Chem Soc, 137, 7007, 10.1021/jacs.5b02556 Van Heest, 2012, Identification of metal–organic framework materials for adsorption separation of rare gases: applicability of ideal adsorbed solution theory (IAST) and effects of inaccessible framework regions, J Phys Chem C, 116, 13183, 10.1021/jp302808j Simon, 2015, What are the best materials to separate a xenon/krypton mixture?, Chem Mater, 27, 4459, 10.1021/acs.chemmater.5b01475 Banerjee, 2016, Metal–organic framework with optimally selective xenon adsorption and separation, Nat Commun, 7, 10.1038/ncomms11831 Mohamed, 2016, Hybrid ultra-microporous materials for selective xenon adsorption and separation, Angew Chem Int Ed, 55, 8285, 10.1002/anie.201602287 Vazhappilly, 2016, Computational modeling of adsorption of Xe and Kr in M-MOF-74 metal organic frame works with different metal atoms, J Phys Chem C, 120, 10968, 10.1021/acs.jpcc.6b02782 Lee, 2018, Adsorptive separation of xenon/krypton mixtures using ligand controls in a zirconium-based metal–organic framework, Chem Eng J, 335, 345, 10.1016/j.cej.2017.10.155 Sumer, 2017, Molecular simulations of MOF adsorbents and membranes for noble gas separations, Chem Eng Sci, 164, 108, 10.1016/j.ces.2017.02.010 Liu, 2017, Enhanced xenon adsorption and separation with an anionic indium–organic framework by ion exchange with Co2+, RSC Adv, 7, 55012, 10.1039/C7RA10538J Banerjee, 2017, Xe adsorption and separation properties of a series of microporous metal–organic frameworks (MOFs) with V-shaped linkers, J Mater Chem A, 5, 16611, 10.1039/C7TA02746J Elsaidi, 2017, Effect of ring rotation upon gas adsorption in SIFSIX-3-M (M=Fe, Ni) pillared square grid networks, Chem Sci, 8, 2373, 10.1039/C6SC05012C Banerjee, 2015, Potential of metal–organic frameworks for separation of xenon and krypton, Acc Chem Res, 48, 211, 10.1021/ar5003126 Dias, 2015, Towards the use of metal–organic frameworks for water reuse: a review of the recent advances in the field of organic pollutants removal and degradation and the next steps in the field, J Mater Chem A, 3, 22484, 10.1039/C5TA05440K Wang, 2016, Applications of water stable metal–organic frameworks, Chem Soc Rev, 45, 5107, 10.1039/C6CS00362A Pi, 2018, Adsorptive and photocatalytic removal of persistent organic pollutants (POPs) in water by metal–organic frameworks (MOFs), Chem Eng J, 337, 351, 10.1016/j.cej.2017.12.092 Kobielska, 2018, Metal–organic frameworks for heavy metal removal from water, Coord Chem Rev, 358, 92, 10.1016/j.ccr.2017.12.010 Hasan, 2015, Removal of hazardous organics from water using metal–organic frameworks (MOFs): plausible mechanisms for selective adsorptions, J Hazard Mater, 283, 329, 10.1016/j.jhazmat.2014.09.046 Falcaro, 2014, MOF positioning technology and device fabrication, Chem Soc Rev, 43, 5513, 10.1039/C4CS00089G Lv, 2017, Preparation and applications of monolithic structures containing metal–organic frameworks, J Sep Sci, 40, 272, 10.1002/jssc.201600423 Nandasiri, 2016, Adsorption, separation, and catalytic properties of densified metal–organic frameworks, Coord Chem Rev, 311, 38, 10.1016/j.ccr.2015.12.004 Ren, 2015, Review on processing of metal–organic framework (MOF) materials towards system integration for hydrogen storage, Int J Energy Res, 39, 607, 10.1002/er.3255 Grande, 2015, An efficient recipe for formulation of metal–organic frameworks, Chem Eng Sci, 124, 154, 10.1016/j.ces.2014.06.048 Ren, 2015, A more efficient way to shape metal–organic framework (MOF) powder materials for hydrogen storage applications, Int J Hydrogen Energy, 40, 4617, 10.1016/j.ijhydene.2015.02.011 Remy, 2013, Selective dynamic CO2 separations on Mg-MOF-74 at low pressures: a detailed comparison with 13X, J Phys Chem C, 117, 9301, 10.1021/jp401923v Cavenati, 2008, Metal organic framework adsorbent for biogas upgrading, Indus Eng Chem Res, 47, 6333, 10.1021/ie8005269 Chanut, 2016, Observing the effects of shaping on gas adsorption in metal–organic frameworks, Eur J Inorg Chem, 2016, 4416, 10.1002/ejic.201600410 Finsy, 2009, Separation of CO2/CH4 mixtures with the MIL-53(Al) metal–organic framework, Micropor Mesopor Mater, 120, 221, 10.1016/j.micromeso.2008.11.007 Darunte, 2017, Monolith-supported amine-functionalized Mg2(dobpdc) Adsorbents for CO2 capture, ACS Appl Mater Interf, 9, 17042, 10.1021/acsami.7b02035 Lawson, 2017, MOF immobilization on the surface of polymer–cordierite composite monoliths through in-situ crystal growth, Sep Purif Technol, 183, 173, 10.1016/j.seppur.2017.03.072 Thakkar, 2017, 3D-printed metal–organic framework monoliths for gas adsorption processes, ACS Appl Mater Interf, 9, 35908, 10.1021/acsami.7b11626 Rezaei, 2017, MOF-74 and UTSA-16 film growth on monolithic structures and their CO2 adsorption performance, Chem Eng J, 313, 1346, 10.1016/j.cej.2016.11.058 Hong, 2015, Manufacturing of metal–organic framework monoliths and their application in CO2 adsorption, Micropor Mesopor Mater, 214, 149, 10.1016/j.micromeso.2015.05.014 Lawson, 2018, Development of carbon hollow fiber-supported metal–organic framework composites for gas adsorption, Energy Technol, 6, 694, 10.1002/ente.201700657 Chen, 2017, Facile fabrication of multifunctional metal–organic framework hollow tubes to trap pollutants, J Am Chem Soc, 139, 16482, 10.1021/jacs.7b10265 Chen, 2016, Shaping of metal–organic frameworks: from fluid to shaped bodies and robust foams, J Am Chem Soc, 138, 10810, 10.1021/jacs.6b06959 Denny, 2016, Metal–organic frameworks for membrane-based separations, Nat Rev Mater, 1, 16078, 10.1038/natrevmats.2016.78 Bunge, 2015, Modification of fibers with nanostructures using reactive dye chemistry, Ind Eng Chem Res, 54, 3821, 10.1021/acs.iecr.5b00089 Zhao, 2014, Highly adsorptive, MOF-functionalized nonwoven fiber mats for hazardous gas capture enabled by atomic layer deposition, Adv Mater Interf, 1, 10.1002/admi.201400040 Lu, 2017, MOFabric: electrospun nanofiber mats from PVDF/UiO-66-NH2 for chemical protection and decontamination, ACS Appl Mater Interf, 9, 13632, 10.1021/acsami.7b01621 Lange, 2014, CuBTC metal–organic frameworks enmeshed in polyacrylonitrile fibrous membrane remove methyl parathion from solutions, Fibers Polymers, 15, 200, 10.1007/s12221-014-0200-5 Rubio-Martinez, 2017, New synthetic routes towards MOF production at scale, Chem Soc Rev, 46, 3453, 10.1039/C7CS00109F Gaillac, 2017, Liquid metal–organic frameworks, Nat Mater, 16, 1149, 10.1038/nmat4998 DeSantis, 2017, Techno-economic analysis of metal–organic frameworks for hydrogen and natural gas storage, Energy Fuels, 31, 2024, 10.1021/acs.energyfuels.6b02510 Burtch, 2014, Water stability and adsorption in metal–organic frameworks, Chem Rev, 114, 10575, 10.1021/cr5002589 Chanut, 2017, Screening the effect of water vapour on gas adsorption performance: application to CO2 capture from flue gas in metal–organic frameworks, ChemSusChem, 10, 1543, 10.1002/cssc.201601816 Mason, 2015, Application of a high-throughput analyzer in evaluating solid adsorbents for post-combustion carbon capture via multicomponent adsorption of CO2, N2, and H2O, J Am Chem Soc, 137, 4787, 10.1021/jacs.5b00838 Bae, 2011, Development and evaluation of porous materials for carbon dioxide separation and capture, Angew Chem Int Ed, 50, 11586, 10.1002/anie.201101891 Lin, 2012, In silico screening of carbon-capture materials, Nat Mater, 11, 633, 10.1038/nmat3336 Huck, 2014, Evaluating different classes of porous materials for carbon capture, Energy Environ Sci, 7, 4132, 10.1039/C4EE02636E Khurana, 2017, Integrated adsorbent-process optimization for carbon capture and concentration using vacuum swing adsorption cycles, AIChE J, 63, 2987, 10.1002/aic.15602 Khurana, 2016, Adsorbent screening for postcombustion CO2 capture: a method relating equilibrium isotherm characteristics to an optimum vacuum swing adsorption process performance, Indus Eng Chem Res, 55, 2447, 10.1021/acs.iecr.5b04531 Nalaparaju, 2015, CO2 capture in cation-exchanged metal–organic frameworks: holistic modeling from molecular simulation to process optimization, Chem Eng Sci, 124, 70, 10.1016/j.ces.2014.09.054 Ga, 2017, New performance indicators for adsorbent evaluation derived from a reduced order model of an idealized PSA process for CO2 capture, Comp Chem Eng, 102, 188, 10.1016/j.compchemeng.2016.11.021 Nikolaidis, 2016, Model-based approach for the evaluation of materials and processes for post-combustion carbon dioxide capture from flue gas by PSA/VSA processes, Indus Eng Chem Res, 55, 635, 10.1021/acs.iecr.5b02845 Nikolaidis, 2017, An integrated two-stage P/VSA process for postcombustion CO2 capture using combinations of adsorbents zeolite 13X and Mg-MOF-74, Indus Eng Chem Res, 56, 974, 10.1021/acs.iecr.6b04270 Hefti, 2016, On the potential of phase-change adsorbents for CO2 capture by temperature swing adsorption, Faraday Discuss, 192, 153, 10.1039/C6FD00040A Sinha, 2017, Systems design and economic analysis of direct air capture of CO2 through temperature vacuum swing adsorption using MIL-101(Cr)-PEI-800 and mmen-Mg2(dobpdc) MOF adsorbents, Indus Eng Chem Res, 56, 750, 10.1021/acs.iecr.6b03887 Adil, 2017, Valuing metal–organic frameworks for postcombustion carbon capture: a benchmark study for evaluating physical adsorbents, Adv Mater, 29, 10.1002/adma.201702953 Belmabkhout, 2016, Low concentration CO2 capture using physical adsorbents: are metal–organic frameworks becoming the new benchmark materials?, Chem Eng J, 296, 386, 10.1016/j.cej.2016.03.124