Interfacial charge transfer in semiconductor-molecular photocatalyst systems for proton reduction
Journal of Photochemistry and Photobiology C: Photochemistry Reviews - Tập 33 - Trang 165-179 - 2017
Tài liệu tham khảo
Barber, 2009, Photosynthetic energy conversion: natural and artificial, Chem. Soc. Rev., 38, 185, 10.1039/B802262N
Gray, 2009, Powering the planet with solar fuel (Vol 1, pg 7, 2009), Nat. Chem., 1, 112, 10.1038/nchem.206
Armaroli, 2007, The future of energy supply: challenges and opportunities, Angew. Chem. Int. Ed., 46, 52, 10.1002/anie.200602373
Chow, 2003, Energy resources and global development, Science, 302, 1528, 10.1126/science.1091939
Ran, 2014, Earth-abundant cocatalysts for semiconductor-based photocatalytic water splitting, Chem. Soc. Rev., 43, 7787, 10.1039/C3CS60425J
Karkas, 2014, Artificial photosynthesis: molecular systems for catalytic water oxidation, Chem. Rev., 114, 11863, 10.1021/cr400572f
Zhang, 2008, Importance of the relationship between surface phases and photocatalytic activity of tio2, Angew. Chem. Int. Ed., 47, 1766, 10.1002/anie.200704788
Xu, 2011, Enhancing hydrogen production activity and suppressing Co formation from photocatalytic biomass reforming on Pt/Tio2 by optimizing anatase-rutile phase structure, J. Catal., 278, 329, 10.1016/j.jcat.2011.01.001
Wang, 2012, Photocatalytic overall water splitting promoted by an alpha-beta phase junction on Ga2o3, Angew. Chem. Int. Ed., 51, 13089, 10.1002/anie.201207554
Yang, 2012, Roles of cocatalysts in Pt-Pds/Cds with exceptionally high quantum efficiency for photocatalytic hydrogen production, J. Catal., 290, 151, 10.1016/j.jcat.2012.03.008
Yang, 2013, Roles of cocatalysts in photocatalysis and photoelectrocatalysis, Acc. Chem. Res., 46, 1900, 10.1021/ar300227e
Wen, 2013, Hybrid artificial photosynthetic systems comprising semiconductors as light harvesters and biomimetic complexes as molecular cocatalysts, Acc. Chem. Res., 46, 2355, 10.1021/ar300224u
Wu, 2014, Enhancement of the efficiency of photocatalytic reduction of protons to hydrogen via molecular assembly, Acc. Chem. Res., 47, 2177, 10.1021/ar500140r
Xu, 2015, Hydrogen photogeneration from water on the biomimetic hybrid artificial photocatalytic systems of semiconductors and earth-abundant metal complexes: progress and challenges, Catal. Sci. Technol., 5, 3084, 10.1039/C5CY00365B
Han, 2014, Fuel from water: the photochemical generation of hydrogen from water, Acc. Chem. Res., 47, 2537, 10.1021/ar5001605
Artero, 2011, Splitting water with cobalt, Angew. Chem. Int. Ed., 50, 7238, 10.1002/anie.201007987
Liu, 2015, Aqueous photogeneration of H2 with cdse nanocrystals and nickel catalysts: electron transfer dynamics, J. Phys. Chem. B, 119, 7349, 10.1021/jp510935w
Brown, 2010, Controlled assembly of hydrogenase-Cdte nanocrystal hybrids for solar hydrogen production, J. Am. Chem. Soc., 132, 9672, 10.1021/ja101031r
Wang, 2011, A highly efficient photocatalytic system for hydrogen production by a robust hydrogenase mimic in an aqueous solution, Angew. Chem. Int. Ed., 50, 3193, 10.1002/anie.201006352
Li, 2013, Interface-directed assembly of a simple precursor of fefe-H(2)Ase mimics on cdse qds for photosynthetic hydrogen evolution in water, Energy Environ. Sci., 6, 2597, 10.1039/c3ee40992a
Cheng, 2017, Photocatalytic H-2 production using a hybrid assembly of an FeFe-hydrogenase model and cdse quantum dot linked through a thiolato-functionalized cyclodextrin, Faraday Discuss., 198, 197, 10.1039/C6FD00207B
Troppmann, 2016, Enhanced photocatalytic hydrogen production by adsorption of an FeFe-hydrogenase subunit mimic on self-assembled membranes, Eur. J. Inorg. Chem., 554, 10.1002/ejic.201501377
Cheng, 2016, Effect of the S-to-S bridge on the redox properties and H-2 activation performance of diiron complexes related to the FeFe-hydrogenase active site, Dalton Trans., 45, 17687, 10.1039/C6DT02953A
Zheng, 2014, Intramolecular iron-mediated C-H bond heterolysis with an assist of pendant base in a FeFe-hydrogenase model, J. Am. Chem. Soc., 136, 16817, 10.1021/ja5078014
Wang, 2013, Catalytic activation of H-2 under mild conditions by an FeFe-hydrogenase model via an active Mu-hydride species, J. Am. Chem. Soc., 135, 13688, 10.1021/ja408376t
Wang, 2011, Approaches to efficient molecular catalyst systems for photochemical H-2 production using FeFe-hydrogenase active site mimics, Dalton Trans., 40, 12793, 10.1039/c1dt11166c
Han, 2012, Robust photogeneration of H2 in water using semiconductor nanocrystals and a nickel catalyst, Science, 338, 1321, 10.1126/science.1227775
Li, 2013, An exceptional artificial photocatalyst, Nih −Cdse/Cds core/shell hybrid, made in situ from cdse quantum dots and nickel salts for efficient hydrogen evolution, Adv. Mater., 25, 6613, 10.1002/adma.201302908
Wang, 2014, Photocatalytic hydrogen evolution from glycerol and water over nickel-hybrid cadmium sulfide quantum dots under visible-light irradiation, Chemsuschem, 7, 1468, 10.1002/cssc.201400028
Gersten, 1982, Catalytic-oxidation of water by an oxo-bridged ruthenium dimer, J. Am. Chem. Soc., 104, 4029, 10.1021/ja00378a053
Diaz-Morales, 2014, Electrochemical and spectroelectrochemical characterization of an iridium-based molecular catalyst for water splitting: turnover frequencies, stability, and electrolyte effects, J. Am. Chem. Soc., 136, 10432, 10.1021/ja504460w
Yin, 2010, A fast soluble carbon-free molecular water oxidation catalyst based on abundant metals, Science, 328, 342, 10.1126/science.1185372
Coggins, 2014, Electrocatalytic water oxidation by a monomeric amidate-ligated Fe(Iii)-aqua complex, J. Am. Chem. Soc., 136, 5531, 10.1021/ja412822u
Santoni, 2014, The use of a vanadium species as a catalyst in photoinduced water oxidation, J. Am. Chem. Soc., 136, 8189, 10.1021/ja5040182
Duan, 2012, A molecular ruthenium catalyst with water-oxidation activity comparable to that of photosystem Ii, Nat. Chem., 4, 418, 10.1038/nchem.1301
Garrido-Barros, 2017, Electronic pi-delocalization boosts catalytic water oxidation by Cu(Ii) molecular catalysts heterogenized on graphene sheets, J. Am. Chem. Soc., 139, 12907, 10.1021/jacs.7b06828
Barnett, 2012, A soluble copper-bipyridine water-oxidation electrocatalyst, Nat. Chem., 4, 498, 10.1038/nchem.1350
Du, 2012, Catalysts made of earth-abundant elements (Co, Ni, Fe) for water splitting: recent progress and future challenges, Energy. Env. Sci., 5, 6012, 10.1039/c2ee03250c
Han, 2015, Polyoxometalate-based nickel clusters as visible light-driven water oxidation catalysts, J. Am. Chem. Soc., 137, 5486, 10.1021/jacs.5b01329
Wen, 2012, A hybrid photocatalytic system comprising Zns as light harvester and an Fe2s2 hydrogenase mimic as hydrogen evolution catalyst, Chemsuschem, 5, 849, 10.1002/cssc.201200190
Ye, 2016, An artificial photosynthetic system containing an inorganic semiconductor and a molecular catalyst for photocatalytic water oxidation, J. Catal., 338, 168, 10.1016/j.jcat.2016.02.024
Cammack, 1999, Bioinorganic chemistry – hydrogenase sophistication, Nature, 397, 214, 10.1038/16601
Frey, 2002, Hydrogenases: hydrogen-activating enzymes, Chembiochem, 3, 153, 10.1002/1439-7633(20020301)3:2/3<153::AID-CBIC153>3.0.CO;2-B
Wen, 2011, Photocatalytic H2 production on hybrid catalyst system composed of inorganic semiconductor and cobaloximes catalysts, J. Catal., 281, 318, 10.1016/j.jcat.2011.05.015
Xu, 2015, Hydrogen production on a hybrid photocatalytic system composed of ultrathin Cds nanosheets and a molecular nickel complex, Chem.-A Eur. J., 21, 4571, 10.1002/chem.201406642
Dong, 2012, Simple nickel-based catalyst systems combined with graphitic carbon nitride for stable photocatalytic hydrogen production in water, Chemsuschem, 5, 2133, 10.1002/cssc.201200490
Wang, 2014, A novel nickel-thiourea-triethylamine complex adsorbed on graphitic C3n4 for low-cost solar hydrogen production, Chem. Commun., 50, 1754, 10.1039/c3cc48141g
Li, 2013, A robust artificial catalyst in situ formed from cdte Qds and inorganic cobalt salts for photocatalytic hydrogen evolution, Energy Environ. Sci., 6, 465, 10.1039/C2EE23898E
Smith, 2010, Semiconductor nanocrystals: structure, properties, and band gap engineering, Acc. Chem. Res., 43, 190, 10.1021/ar9001069
Uchihara, 1998, Nanosecond laser flash photolysis of thioglycerol-capped cadmium sulfide particles, J. Photochem. Photobiol. A-Chem., 118, 131, 10.1016/S1010-6030(98)00373-6
Hines, 2013, Quantum dot surface chemistry: ligand effects and electron transfer reactions, J. Phys. Chem. C, 117, 14418, 10.1021/jp404031s
El-Sayed, 2004, Small is different: shape-, size-, and composition-dependent properties of some colloidal semiconductor nanocrystals, Acc. Chem. Res., 37, 326, 10.1021/ar020204f
Li, 2013, Interface-directed assembly of a simple precursor of FeFe-H2 ase mimics on cdse qds for photosynthetic hydrogen evolution in water, Energy. Env. Sci., 6, 2597, 10.1039/c3ee40992a
Wang, 2013, Exceptional poly(acrylic acid)-based artificial FeFe-hydrogenases for photocatalytic H2 production in water, Angew. Chem. Int. Ed., 52, 8134, 10.1002/anie.201303110
Jian, 2013, Chitosan confinement enhances hydrogen photogeneration from a mimic of the diiron subsite of FeFe-hydrogenase, Nat. Commun., 4, 2695, 10.1038/ncomms3695
Kavan, 1996, Electrochemical and photoelectrochemical investigation of single-crystal anatase, J. Am. Chem. Soc., 118, 6716, 10.1021/ja954172l
Scanlon, 2013, Band alignment of rutile and anatase Tio(2), Nat. Mater., 12, 798, 10.1038/nmat3697
Pfeifer, 2013, Energy band alignment between anatase and rutile Tio2, J. Phys. Chem. Lett., 4, 4182, 10.1021/jz402165b
Kang, 2012, Calculating band alignment between materials with different structures: the case of anatase and rutile titanium dioxide, J. Phys. Chem. C, 116, 20765, 10.1021/jp3067525
Deák, 2011, Band lineup and charge carrier separation in mixed rutile-anatase systems, J. Phys. Chem. C, 115, 3443, 10.1021/jp1115492
Schneider, 2014, Understanding Tio2 photocatalysis: mechanisms and materials, Chem. Rev., 114, 9919, 10.1021/cr5001892
Zhu, 2013, Charging of quantum dots by sulfide redox electrolytes reduces electron injection efficiency in quantum dot sensitized solar cells, J. Am. Chem. Soc., 135, 11461, 10.1021/ja405026x
Wu, 2013, Beyond band alignment: hole localization driven formation of three spatially separated long-lived exciton states in Cdse/Cds nanorods, ACS Nano, 7, 7173, 10.1021/nn402597p
Fitzmorris, 2013, Ultrafast transient absorption studies of hematite nanoparticles: the effect of particle shape on exciton dynamics, Chemsuschem, 6, 1907, 10.1002/cssc.201300571
Shen, 2013, Physical and photoelectrochemical properties of Zr-doped hematite nanorod arrays, Nanoscale, 5, 9867, 10.1039/c3nr03245k
Tamaki, 2006, Trapping dynamics of electrons and holes in a nanocrystalline Tio2 film revealed by femtosecond visible/near-infrared transient absorption spectroscopy, C.R. Chim., 9, 268, 10.1016/j.crci.2005.05.018
Cowan, 2013, Long-lived charge separated states in nanostructured semiconductor photoelectrodes for the production of solar fuels, Chem. Soc. Rev., 42, 2281, 10.1039/C2CS35305A
Boulesbaa, 2007, Ultrafast charge separation at Cds quantum dot/rhodamine B molecule interface, J. Am. Chem. Soc., 129, 15132, 10.1021/ja0773406
Huang, 2008, Photoinduced ultrafast electron transfer from cdse quantum dots to re-bipyridyl complexes, J. Am. Chem. Soc., 130, 5632, 10.1021/ja8003683
Shi, 2010, Photoluminescence spectroscopic studies on Tio2 photocatalyst
Wang, 2010, Trap states and carrier dynamics of Tio2 studied by photoluminescence spectroscopy under weak excitation condition, Phys. Chem. Chem. Phys., 12, 7083, 10.1039/b925277k
Wang, 2011, Visible emission characteristics from different defects of Zns nanocrystals, Phys. Chem. Chem. Phys., 13, 4715, 10.1039/c0cp01620a
Pal, 2013, Electron transfer from Cdse-Zns core-shell quantum dots to cobalt(Iii) complexes, Phys. Chem. Chem. Phys., 15, 15888, 10.1039/c3cp51834e
Pal, 2015, Probing the mechanism of fluorescence quenching of qds by co(Iii)-complexes: size of qd and nature of the complex both dictate energy and electron transfer processes, J. Phys. Chem. C, 119, 22690, 10.1021/acs.jpcc.5b06795
Gimbert-Surinach, 2014, Efficient and limiting reactions in aqueous light-induced hydrogen evolution system using molecular catalysts and quantum dots, J. Am. Chem. Soc., 136, 7655, 10.1021/ja501489h
Yamakata, 2001, Water- and oxygen-induced decay kinetics of photogenerated electrons in Tio2 and Pt/Tio2: a time-resolved infrared absorption study, J. Phys. Chem. B, 105, 7258, 10.1021/jp010802w
Tamaki, 2006, Direct observation of reactive trapped holes in Tio2 undergoing photocatalytic oxidation of adsorbed alcohols: evaluation of the reaction rates and yields, J. Am. Chem. Soc., 128, 416, 10.1021/ja055866p
Wang, 2015, Transient absorption spectroscopy of anatase and rutile: the impact of morphology and phase on photocatalytic activity, J. Phys. Chem. C, 119, 10439, 10.1021/acs.jpcc.5b01858
Reynal, 2015, Unravelling the ph-dependence of a molecular photocatalytic system for hydrogen production, Chem. Sci., 6, 4855, 10.1039/C5SC01349F
Huang, 2012, Photodriven charge separation dynamics in Cdse/Zns core/shell quantum dot/cobaloxime hybrid for efficient hydrogen production, J. Am. Chem. Soc., 134, 16472, 10.1021/ja3062584
Reynal, 2013, Parameters affecting electron transfer dynamics from semiconductors to molecular catalysts for the photochemical reduction of protons, Energy Environ. Sci., 6, 3291, 10.1039/c3ee40961a
Reynal, 2014, Distance dependent charge separation and recombination in semiconductor/molecular catalyst systems for water splitting, Chem. Commun., 50, 12768, 10.1039/C4CC05143B
Wilker, 2014, Electron transfer kinetics in Cds nanorod-Fefe-hydrogenase complexes and implications for photochemical H-2 generation, J. Am. Chem. Soc., 136, 4316, 10.1021/ja413001p
Busby, 2015, Effect of surface stoichiometry on blinking and hole trapping dynamics in cdse nanocrystals, J. Phys. Chem. C, 119, 27797, 10.1021/acs.jpcc.5b08243
Abdellah, 2014, Hole trapping the critical factor for quantum dot sensitized solar cell performance, J. Phys. Chem. C, 118, 25802, 10.1021/jp5086284
Abdellah, 2014, Ultra long-lived radiative trap states in Cdse quantum dots, J. Phys. Chem. C, 118, 21682, 10.1021/jp506536h
Li, 2014, Mechanistic insights into the interface-directed transformation of thiols into disulfides and molecular hydrogen by visible-light irradiation of quantum dots, Angew. Chem. Int. Ed., 53, 2085, 10.1002/anie.201310249
Radhakrishnan, 2011, Capping-ligand effect on the stability of cdse quantum dot langmuir monolayers, Langmuir, 27, 2099, 10.1021/la104244x
Zillner, 2012, Role of ligand exchange at cdse quantum dot layers for charge separation, J. Phys. Chem. C, 116, 16747, 10.1021/jp303766d
Zhu, 2014, Synthesis and optical properties of thiol functionalized Cdse/Zns (core/shell) quantum dots by ligand exchange, J. Nanomater., 324972
Goesmann, 2010, Nanoparticulate functional materials, Angew. Chem. Int. Ed., 49, 1362, 10.1002/anie.200903053
Yu, 2006, First principles study of cdse quantum dots: stability, surface unsaturations, and experimental validation, Appl. Phys. Lett., 88
Zherebetskyy, 2014, Hydroxylation of the surface of pbs nanocrystals passivated with oleic acid, Science, 344, 1380, 10.1126/science.1252727
Ye, 2016, Roles of adsorption sites in electron transfer from cds quantum dots to molecular catalyst cobaloxime studied by time-resolved spectroscopy, Phys. Chem. Chem. Phys., 18, 17389, 10.1039/C6CP02808J
Ye, 2017, Charge-transfer dynamics promoted by hole trap states in cdse quantum dots-Ni2+ photocatalytic system, J. Phys. Chem. C, 121, 17112, 10.1021/acs.jpcc.7b05061
Rountree, 2016, Linear free energy relationships in the hydrogen evolution reaction: kinetic analysis of a cobaloxime catalyst, ACS Catal., 6, 3326, 10.1021/acscatal.6b00667
Xu, 2016, Unraveling a single-step simultaneous two-electron transfer process from semiconductor to molecular catalyst in a copy/Cds hybrid system for photocatalytic H2 evolution under strong alkaline conditions, J. Am. Chem. Soc., 138, 10726, 10.1021/jacs.6b04080