Material design at nano and atomic scale for electrocatalytic CO2 reduction
Tài liệu tham khảo
Waters, 2016, The Anthropocene is functionally and stratigraphically distinct from the Holocene, Science, 351, 10.1126/science.aad2622
Feldman, 2015, Observational determination of surface radiative forcing by CO2 from 2000 to 2010, Nature, 519, 339, 10.1038/nature14240
Meinshausen, 2009, Greenhouse-gas emission targets for limiting global warming to 2 °C, Nature, 458, 1158, 10.1038/nature08017
Bushuyev, 2018, What should we make with CO2 and how can we make it?, Joule, 2, 825, 10.1016/j.joule.2017.09.003
Chu, 2016, The path towards sustainable energy, Nat. Mater., 16, 16, 10.1038/nmat4834
Schreier, 2015, Efficient photosynthesis of carbon monoxide from CO2 using perovskite photovoltaics, Nat. Commun., 6, 7326, 10.1038/ncomms8326
Rosen, 2011, Ionic liquid–mediated selective conversion of CO2 to CO at low overpotentials, Science, 334, 643, 10.1126/science.1209786
Wang, 2011, Recent advances in catalytic hydrogenation of carbon dioxide, Chem. Soc. Rev., 40, 3703, 10.1039/c1cs15008a
Yang, 2017, Current status and bioinspired perspective of electrochemical conversion of CO2 to a long-chain hydrocarbon, J. Phys. Chem. Lett., 8, 538, 10.1021/acs.jpclett.6b02748
Zhang, 2017, Nanostrukturierte Materialien für die elektrokatalytische CO2-Reduktion und ihre Reaktionsmechanismen, Angew. Chem., 129, 11482, 10.1002/ange.201612214
Yoshio, 1986, Production of methane and ethylene in electrochemical reduction of carbon dioxide at copper electrode in aqueous hydrogencarbonate solution, Chem. Lett., 15, 897, 10.1246/cl.1986.897
Wang, Y.; Han, P.; Lv, X.; Zhang, L.; Zheng, G. Defect and interface engineering for aqueous electrocatalytic CO2 reduction. Joule, DOI:10.1016/j.joule.2018.09.021 10.1016/j.joule.2018.09.021.
Gao, 2016, Partially oxidized atomic cobalt layers for carbon dioxide electroreduction to liquid fuel, Nature, 529, 68, 10.1038/nature16455
Sun, 2017, Fundamentals and challenges of electrochemical CO2 reduction using two-dimensional materials, Chem, 3, 560, 10.1016/j.chempr.2017.09.009
Qiao, 2014, A review of catalysts for the electroreduction of carbon dioxide to produce low-carbon fuels, Chem. Soc. Rev., 43, 631, 10.1039/C3CS60323G
Hatsukade, 2014, Insights into the electrocatalytic reduction of CO2 on metallic silver surfaces, Phys. Chem. Chem. Phys., 16, 13814, 10.1039/C4CP00692E
Weekes, 2018, Electrolytic CO2 reduction in a flow cell, Acc. Chem. Res., 51, 910, 10.1021/acs.accounts.8b00010
Jayashree, 2010, On the performance of membraneless laminar flow-based fuel cells, J. Power Sources, 195, 3569, 10.1016/j.jpowsour.2009.12.029
Schwarz, 1989, Reduction potentials of CO2- and the alcohol radicals, J. Phys. Chem., 93, 409, 10.1021/j100338a079
Schiffrin, 1973, Application of the photo-electrochemical effect to the study of the electrochemical properties of radicals: CO2 and CH, Faraday Discuss. Chem. Soc., 56, 75, 10.1039/DC9735600075
Aylmer-Kelly, 1973, Studies of electrochemically generated reaction intermediates using modulated specular reflectance spectroscopy, Faraday Discuss. Chem. Soc., 56, 96, 10.1039/dc9735600096
Pacansky, 1975, SCF ab-initio ground state energy surfaces for CO2 and CO2−, J. Chem. Phys., 62, 2740, 10.1063/1.430807
Kortlever, 2015, Catalysts and reaction pathways for the electrochemical reduction of carbon dioxide, J. Phys. Chem. Lett., 6, 4073, 10.1021/acs.jpclett.5b01559
Jitaru, 1997, Electrochemical reduction of carbon dioxide on flat metallic cathodes, J. Appl. Electrochem., 27, 875, 10.1023/A:1018441316386
Chaplin, 2003, Effects of process conditions and electrode material on reaction pathways for carbon dioxide electroreduction with particular reference to formate formation, J. Appl. Electrochem., 33, 1107, 10.1023/B:JACH.0000004018.57792.b8
Ertem, 2013, Functional role of pyridinium during aqueous electrochemical reduction of CO2 on Pt(111), J. Phys. Chem. Lett., 4, 745, 10.1021/jz400183z
Hori, 1994, Electrocatalytic process of CO selectivity in electrochemical reduction of CO2 at metal electrodes in aqueous media, Electrochim. Acta, 39, 1833, 10.1016/0013-4686(94)85172-7
Nakata, 2014, High-yield electrochemical production of formaldehyde from CO2 and seawater, Angew. Chem. Int. Ed., 53, 871, 10.1002/anie.201308657
Inoue, 1979, Photoelectrocatalytic reduction of carbon dioxide in aqueous suspensions of semiconductor powders, Nature, 277, 637, 10.1038/277637a0
Lee, 2018, Defining a materials database for the design of copper binary alloy catalysts for electrochemical CO2 conversion, Adv. Mater., 30, 1704717, 10.1002/adma.201704717
Hoang, 2017, Nanoporous copper films by additive-controlled electrodeposition: CO2 reduction catalysis, ACS Catal., 7, 3313, 10.1021/acscatal.6b03613
Mistry, 2016, Highly selective plasma-activated copper catalysts for carbon dioxide reduction to ethylene, Nat. Commun., 7, 12123, 10.1038/ncomms12123
Peterson, 2010, How copper catalyzes the electroreduction of carbon dioxide into hydrocarbon fuels, Energy Environ. Sci., 3, 1311, 10.1039/c0ee00071j
Nie, 2013, Selectivity of CO2 reduction on copper electrodes: the role of the kinetics of elementary steps, Angew. Chem. Int. Ed., 52, 2459, 10.1002/anie.201208320
Fan, 2018, Electrochemical CO2 reduction to C2+ species: heterogeneous electrocatalysts, reaction pathways, and optimization strategies, Materials Today Energy, 10, 280, 10.1016/j.mtener.2018.10.003
Schouten, 2011, A new mechanism for the selectivity to C1 and C2 species in the electrochemical reduction of carbon dioxide on copper electrodes, Chem. Sci., 2, 1902, 10.1039/c1sc00277e
Rosen, 2012, In situ spectroscopic examination of a low overpotential pathway for carbon dioxide conversion to carbon monoxide, J. Phys. Chem. C, 116, 15307, 10.1021/jp210542v
Papasizza, 2018, In situ monitoring using ATR-SEIRAS of the electrocatalytic reduction of CO2 on Au in an ionic liquid/water mixture, ACS Catal., 8, 6345, 10.1021/acscatal.8b00977
Hansen, 2013, Understanding trends in the electrocatalytic activity of metals and enzymes for CO2 reduction to CO, J. Phys. Chem. Lett., 4, 388, 10.1021/jz3021155
Reske, 2014, Particle size effects in the catalytic electroreduction of CO2 on Cu nanoparticles, J. Am. Chem. Soc., 136, 6978, 10.1021/ja500328k
Salehi-Khojin, 2013, Nanoparticle silver catalysts that show enhanced activity for carbon dioxide electrolysis, J. Phys. Chem. C, 117, 1627, 10.1021/jp310509z
Kim, 2015, Achieving selective and efficient electrocatalytic activity for CO2 reduction using immobilized silver nanoparticles, J. Am. Chem. Soc., 137, 13844, 10.1021/jacs.5b06568
Kauffman, 2012, Experimental and computational investigation of Au25 clusters and CO2: a unique interaction and enhanced electrocatalytic activity, J. Am. Chem. Soc., 134, 10237, 10.1021/ja303259q
Zhu, 2013, Monodisperse Au nanoparticles for selective electrocatalytic reduction of CO2 to CO, J. Am. Chem. Soc., 135, 16833, 10.1021/ja409445p
Gao, 2015, Size-dependent electrocatalytic reduction of CO2 over Pd nanoparticles, J. Am. Chem. Soc., 137, 4288, 10.1021/jacs.5b00046
Abrikosov, 2001, Valence-band hybridization and core level shifts in random Ag-Pd alloys, Phys. Rev. Lett., 87, 176403, 10.1103/PhysRevLett.87.176403
Jia, 2014, Enhanced selectivity for the electrochemical reduction of CO2 to alcohols in aqueous solution with nanostructured Cu–Au alloy as catalyst, J. Power Sources, 252, 85, 10.1016/j.jpowsour.2013.12.002
Mott, 2007, Synergistic activity of gold-platinum alloy nanoparticle catalysts, Catal. Today, 122, 378, 10.1016/j.cattod.2007.01.007
Kim, 2014, Synergistic geometric and electronic effects for electrochemical reduction of carbon dioxide using gold–copper bimetallic nanoparticles, Nat. Commun., 5, 4948, 10.1038/ncomms5948
Huang, 2017, Understanding of strain effects in the electrochemical reduction of CO2 : using Pd nanostructures as an ideal platform, Angew Chem. Int. Ed. Engl., 56, 3594, 10.1002/anie.201612617
Wu, 2012, Surface lattice-engineered bimetallic nanoparticles and their catalytic properties, Chem. Soc. Rev., 41, 8066, 10.1039/c2cs35189g
Strasser, 2010, Lattice-strain control of the activity in dealloyed core-shell fuel cell catalysts, Nat. Chem., 2, 454, 10.1038/nchem.623
Li, 2017, Tuning Sn-catalysis for electrochemical reduction of CO2 to CO via the core/shell Cu/SnO2 structure, J. Am. Chem. Soc., 139, 4290, 10.1021/jacs.7b00261
Moseley, 2015, Computational design of strain in core–shell nanoparticles for optimizing catalytic activity, Nano Lett., 15, 4089, 10.1021/acs.nanolett.5b01154
Clark, 2017, Electrochemical CO2 reduction over compressively strained CuAg surface alloys with enhanced multi-carbon oxygenate selectivity, J. Am. Chem. Soc., 139, 15848, 10.1021/jacs.7b08607
Hoang, 2018, Nanoporous copper-silver alloys by additive-controlled electrodeposition for the selective electroreduction of CO2 to ethylene and ethanol, J. Am. Chem. Soc., 140, 5791, 10.1021/jacs.8b01868
Plana, 2013, Tuning CO2 electroreduction efficiency at Pd shells on Au nanocores, Chem. Commun., 49, 10962, 10.1039/c3cc46543h
Reske, 2013, Controlling catalytic selectivities during CO2 electroreduction on thin Cu metal overlayers, J. Phys. Chem. Lett., 4, 2410, 10.1021/jz401087q
He, 2018, Electrocatalytic alloys for CO2 reduction, ChemSusChem, 11, 48, 10.1002/cssc.201701825
Ma, 2017, Electroreduction of carbon dioxide to hydrocarbons using bimetallic Cu–Pd catalysts with different mixing patterns, J. Am. Chem. Soc., 139, 47, 10.1021/jacs.6b10740
Kim, 2017, Electrochemical activation of CO2 through atomic ordering transformations of AuCu nanoparticles, J. Am. Chem. Soc., 139, 8329, 10.1021/jacs.7b03516
Lee, 2017, Importance of Ag–Cu biphasic boundaries for selective electrochemical reduction of CO2 to ethanol, ACS Catal., 7, 8594, 10.1021/acscatal.7b02822
Tao, 2018, Doping palladium with tellurium for the highly selective electrocatalytic reduction of aqueous CO2 to CO, Chem. Sci., 9, 483, 10.1039/C7SC03018E
Rodriguez, 2007, Activity of CeO<em>x</em> and TiO<em>x</em> Nanoparticles Grown on Au(111) in the Water-Gas Shift Reaction, Science, 318, 1757, 10.1126/science.1150038
Graciani, 2014, Highly active copper-ceria and copper-ceria-titania catalysts for methanol synthesis from CO2, Science, 345, 546, 10.1126/science.1253057
Edwards, 1984, Infrared spectroscopy of copper/zinc oxide catalysts for the water-gas shift reaction and methanol synthesis, J. Phys. Chem., 88, 5620, 10.1021/j150667a032
Rodriguez, 2007, Water gas shift reaction on Cu and Au nanoparticles supported on CeO2(111) and ZnO(000$ ar 1$): intrinsic activity and importance of support interactions, Angew. Chem. Int. Ed., 46, 1329, 10.1002/anie.200603931
Gao, 2017, Enhancing CO2 electroreduction with the metal–oxide interface, J. Am. Chem. Soc., 139, 5652, 10.1021/jacs.7b00102
Han, 2018, Tuning the Pd-catalyzed electroreduction of CO2 to CO with reduced overpotential, Catalysis Science & Technology, 8, 3894, 10.1039/C8CY01037D
Xiao, 2017, Cu metal embedded in oxidized matrix catalyst to promote CO2 activation and CO dimerization for electrochemical reduction of CO2, Proc. Natl. Acad. Sci. Unit. States Am., 114, 6685, 10.1073/pnas.1702405114
Li, 2012, CO2 reduction at low overpotential on Cu electrodes resulting from the reduction of thick Cu2O films, J. Am. Chem. Soc., 134, 7231, 10.1021/ja3010978
Kas, 2014, Electrochemical CO2 reduction on Cu2O-derived copper nanoparticles: controlling the catalytic selectivity of hydrocarbons, Phys. Chem. Chem. Phys., 16, 12194, 10.1039/C4CP01520G
Genovese, 2018, Operando spectroscopy study of the carbon dioxide electro-reduction by iron species on nitrogen-doped carbon, Nat. Commun., 9, 935, 10.1038/s41467-018-03138-7
Mariano, 2017, Selective increase in CO2 electroreduction activity at grain-boundary surface terminations, Science, 358, 1187, 10.1126/science.aao3691
Lu, 2009, Strengthening materials by engineering coherent internal boundaries at the nanoscale, Science, 324, 349, 10.1126/science.1159610
Feng, 2015, Grain-boundary-dependent CO2 electroreduction activity, J. Am. Chem. Soc., 137, 4606, 10.1021/ja5130513
Chen, 2012, Aqueous CO2 reduction at very low overpotential on oxide-derived Au nanoparticles, J. Am. Chem. Soc., 134, 19969, 10.1021/ja309317u
Pan, 2016, Photocatalytic CO2 reduction highly enhanced by oxygen vacancies on Pt-nanoparticle-dispersed gallium oxide, Nano Research, 9, 1689, 10.1007/s12274-016-1063-4
Nowotny, 2008, Defect chemistry of titanium dioxide. Application of defect engineering in processing of TiO2-based photocatalysts, J. Phys. Chem. C, 112, 5275, 10.1021/jp077275m
Yang, 2013, Oxygen vacancy engineering of cerium oxides for carbon dioxide capture and reduction, ChemSusChem, 6, 1326, 10.1002/cssc.201300219
Geng, 2018, Oxygen vacancies in ZnO nanosheets enhance CO2 electrochemical reduction to CO, Angew. Chem. Int. Ed., 57, 6054, 10.1002/anie.201711255
Gao, 2017, Atomic layer confined vacancies for atomic-level insights into carbon dioxide electroreduction, Nat. Commun., 8, 14503, 10.1038/ncomms14503
Ma, 2017, Heterogeneous electrochemical CO2 reduction using nonmetallic carbon-based catalysts: current status and future challenges, Nanotechnology, 28, 472001, 10.1088/1361-6528/aa8f6f
Wu, 2016, Incorporation of nitrogen defects for efficient reduction of CO2 via two-electron pathway on three-dimensional graphene foam, Nano Lett., 16, 466, 10.1021/acs.nanolett.5b04123
Chai, 2016, Highly effective sites and selectivity of nitrogen-doped graphene/CNT catalysts for CO2 electrochemical reduction, Chem. Sci., 7, 1268, 10.1039/C5SC03695J
Wu, 2015, Achieving highly efficient, selective, and stable CO2 reduction on nitrogen-doped carbon nanotubes, ACS Nano, 9, 5364, 10.1021/acsnano.5b01079
Liu, 2016, Pyrrolic-nitrogen doped graphene: a metal-free electrocatalyst with high efficiency and selectivity for the reduction of carbon dioxide to formic acid: a computational study, Phys. Chem. Chem. Phys., 18, 5491, 10.1039/C5CP07458D
He, 2017, Electrochemical reduction of CO2 on graphene supported transition metals - towards single atom catalysts, Phys. Chem. Chem. Phys., 19, 11436, 10.1039/C7CP00915A
Qiao, 2011, Single-atom catalysis of CO oxidation using Pt1/FeOx, Nat. Chem., 3, 634, 10.1038/nchem.1095
Chen, 2018, Single-atom catalysts: synthetic strategies and electrochemical applications, Joule, 2, 1242, 10.1016/j.joule.2018.06.019
Zhao, 2017, Ionic exchange of metal-organic frameworks to access single nickel sites for efficient electroreduction of CO2, J. Am. Chem. Soc., 139, 8078, 10.1021/jacs.7b02736
Li, 2017, Exclusive Ni–N4 sites realize near-unity CO selectivity for electrochemical CO2 reduction, J. Am. Chem. Soc., 139, 14889, 10.1021/jacs.7b09074
Yang, 2018, Atomically dispersed Ni(i) as the active site for electrochemical CO2 reduction, Nature Energy, 3, 140, 10.1038/s41560-017-0078-8
Pan, 2018, Unveiling active sites of CO2 reduction on nitrogen-coordinated and atomically dispersed iron and cobalt catalysts, ACS Catal., 8, 3116, 10.1021/acscatal.8b00398
Pan, 2018, Design of single-atom Co–N5 catalytic site: a robust electrocatalyst for CO2 reduction with nearly 100% CO selectivity and remarkable stability, J. Am. Chem. Soc., 140, 4218, 10.1021/jacs.8b00814