PDF
Abstract
Recent research on the electrocatalytic CO2 reduction reaction (eCO2RR) has garnered significant attention given its capability to address environmental issues associated with CO2 emissions while harnessing clean energy to produce high-value-added products. Compared to C1 products, C2+ products provide greater energy densities and are highly sought after as chemical feedstocks. However, the formation of the C-C bond is challenging due to competition with the formation of H-H and C-H bonds. Therefore, to elevate the selectivity and yield of C2+ fuels, it is essential to develop more advanced electrocatalysts and optimize the design of electrochemical cell configurations. Of the materials investigated for CO2RR, Cu-based materials stand out due to their wide availability, affordability, and environmental compatibility. Moreover, Cu-based catalysts exhibit promising capabilities in CO2 adsorption and activation, facilitating the formation of C2+ compounds via C-C coupling. This review examines recent research on both electrocatalysts and electrochemical cells for CO2 electroreduction to C2+ compounds, introducing the core principles of eCO2RR and the reaction pathways involved in generating C2+ products. A key focus is the categorization of Cu-based catalyst designs, including defect engineering, surface modification, nanostructure engineering, and tandem catalysis. By analyzing recent studies on eCO2RR with Cu-based catalysts, we aim to elucidate the mechanisms behind enhanced selectivity for C2+ compounds. Additionally, various types of electrolytic cells are discussed. Lastly, the prospects and limitations of utilizing Cu-based materials and electrocatalytic cells for CO2 reduction are highlighted for future research.
Keywords
CO2 reduction
/
electrocatalysis
/
C2+ products
/
Cu
/
electrocatalytic cells
Cite this article
Download citation ▾
Joonhee Ma, Soo Young Kim.
Development of catalysts and reactor designs for CO2 electroreduction towards C2+ products.
Energy Materials, 2025, 5(5): 500052 DOI:10.20517/energymater.2024.237
| [1] |
Parson EA.Fossil fuels without CO2 emissions.Science1998;282:1053-4
|
| [2] |
Fan X,Hu Y,Kim Y.Factors affecting the performance of HJT silicon solar cells in the intrinsic and emitter layers: a review.Trans Electr Electron Mater2023;24:123-31
|
| [3] |
Cho J,Ryu S.Multifunctional green solvent for efficient perovskite solar cells.Electron Mater Lett2023;19:462-70
|
| [4] |
Muradov N.Low to near-zero CO2 production of hydrogen from fossil fuels: status and perspectives.Int J Hydrogen Energy2017;42:14058-88
|
| [5] |
Detz RJ,Kalkman AJ.Electrochemical CO2 conversion technologies: state-of-the-art and future perspectives.Sustainable Energy Fuels2023;7:5445-72
|
| [6] |
Das TK,Çelik Y.Catalytic polymer nanocomposites for environmental remediation of wastewater.Sci Total Environ2023;901:165772
|
| [7] |
Khokhar MQ,Jeong S.A review on p-type tunnel oxide passivated contact (TOPCon) solar cell.Trans Electr Electron Mater2023;24:169-77
|
| [8] |
Anwar MN,Sohail NF.CO2 utilization: turning greenhouse gas into fuels and valuable products.J Environ Manage2020;260:110059
|
| [9] |
Peter SC.Reduction of CO2 to chemicals and fuels: a solution to global warming and energy crisis.ACS Energy Lett2018;3:1557-61
|
| [10] |
Song Q,Liu P,He L.Recent progress in CO2 conversion into organic chemicals by molecular catalysis.Green Chem2023;25:6538-60
|
| [11] |
Xia Q,Hu L,Lu Y.Biotransforming CO2 into valuable chemicals.J Clean Prod2024;434:140185
|
| [12] |
Fang S,Bharti J.Photocatalytic CO2 reduction.Nat Rev Methods Primers2023;3:61
|
| [13] |
Alkhatib II,Pagliaro M,Palmisano G.Metal-organic frameworks for photocatalytic CO2 reduction under visible radiation: a review of strategies and applications.Catal Today2020;340:209-24
|
| [14] |
Ye W,Ma T.A review on electrochemical synthesized copper-based catalysts for electrochemical reduction of CO2 to C2+ products.Chem Eng J2021;414:128825
|
| [15] |
Birdja YY,Figueiredo MC,Calle-vallejo F.Advances and challenges in understanding the electrocatalytic conversion of carbon dioxide to fuels.Nat Energy2019;4:732-45
|
| [16] |
Liu X,Zheng Y,Qiao SZ.Building Up a picture of the electrocatalytic nitrogen reduction activity of transition metal single-atom catalysts.J Am Chem Soc2019;141:9664-72
|
| [17] |
Cho JH,Hong SH.Transition metal ion doping on ZIF-8 enhances the electrochemical CO2 reduction reaction.Adv Mater2023;35:2208224
|
| [18] |
Cho JH,Lee C.Crystallographically vacancy-induced MOF nanosheet as rational single-atom support for accelerating CO2 electroreduction to CO.Carbon Energy2024;6:e510
|
| [19] |
Nitopi S,Scott SB.Progress and perspectives of electrochemical CO2 reduction on copper in aqueous electrolyte.Chem Rev2019;119:7610-72
|
| [20] |
Al-rowaili FN,Ba Shammakh MS.A review on recent advances for electrochemical reduction of carbon dioxide to methanol using metal-organic framework (MOF) and Non-MOF catalysts: challenges and future prospects.ACS Sustainable Chem Eng2018;6:15895-914
|
| [21] |
Wu J.Catalytic conversion of CO2 to value added fuels: current status, challenges, and future directions.Chin J Catal2016;37:999-1015
|
| [22] |
Kibria MG,Gabardo CM.Electrochemical CO2 reduction into chemical feedstocks: from mechanistic electrocatalysis models to system design.Adv Mater2019;31:e1807166
|
| [23] |
Liang C,Yang S.High efficiency electrochemical reduction of CO2 beyond the two-electron transfer pathway on grain boundary rich ultra-small SnO2 nanoparticles.J Mater Chem A2018;6:10313-9
|
| [24] |
Hussain MS,Irshad M.Recent engineering strategies for enhancing C2+ product formation in copper-catalyzed CO2 electroreduction.Nano Mater Sci2024;
|
| [25] |
Ma M,Smith WA.Selective electrochemical reduction of CO2 to CO on CuO-derived Cu nanowires.Phys Chem Chem Phys2015;17:20861-7
|
| [26] |
Reske R,Behafarid F,Strasser P.Particle size effects in the catalytic electroreduction of CO2 on Cu nanoparticles.J Am Chem Soc2014;136:6978-86
|
| [27] |
Kas R,Milbrat A,Mul G.Electrochemical CO2 reduction on Cu2O-derived copper nanoparticles: controlling the catalytic selectivity of hydrocarbons.Phys Chem Chem Phys2014;16:12194-201
|
| [28] |
Kuhl KP,Abram DN.New insights into the electrochemical reduction of carbon dioxide on metallic copper surfaces.Energy Environ Sci2012;5:7050-9
|
| [29] |
Ogura K,Kudo Y.Reduction of CO2 to ethylene at three-phase interface effects of electrode substrate and catalytic coating.J Electrochem Soc2005;152:D213
|
| [30] |
Han H,Luo Y,Jia Y.Recent advances in α-Fe2O3-based photocatalysts for CO2 conversion to solar fuels.J Ind Eng Chem2023;128:81-94
|
| [31] |
Trogadas P,Coppens MO.From biomimicking to bioinspired design of electrocatalysts for CO2 reduction to C1 products.Angew Chem Int Ed2024;63:e202314446 PMCID:PMC10962605
|
| [32] |
Wang Y,Lv X,Zheng G.Defect and interface engineering for aqueous electrocatalytic CO2 reduction.Joule2018;2:2551-82
|
| [33] |
Qiao J,Hong F.A review of catalysts for the electroreduction of carbon dioxide to produce low-carbon fuels.Chem Soc Rev2014;43:631-75
|
| [34] |
Shen H,Li H.Acidic CO2-to-HCOOH electrolysis with industrial-level current on phase engineered tin sulfide.Nat Commun2023;14:2843 PMCID:PMC10195825
|
| [35] |
Zhao K.Carbon-based materials for electrochemical reduction of CO2 to C2+ oxygenates: recent progress and remaining challenges.ACS Catal2021;11:2076-97
|
| [36] |
Sun Z,Tao H,Han B.Fundamentals and challenges of electrochemical CO2 reduction using two-dimensional materials.Chem2017;3:560-87
|
| [37] |
Woldu AR,Zhao P,Astruc D.Electrochemical CO2 reduction (CO2RR) to multi-carbon products over copper-based catalysts.Coord Chem Rev2022;454:214340
|
| [38] |
Jiang K,Zeng G,Goddard WA.Effects of surface roughness on the electrochemical reduction of CO2 over Cu.ACS Energy Lett2020;5:1206-14
|
| [39] |
Xiao C.Architectural design for enhanced C2 product selectivity in electrochemical CO2 reduction using Cu-based catalysts: a review.ACS Nano2021;15:7975-8000
|
| [40] |
Cho JH,Kim SY.Toward high-efficiency photovoltaics-assisted electrochemical and photoelectrochemical CO2 reduction: strategy and challenge.Exploration2023;3:20230001 PMCID:PMC10582615
|
| [41] |
Rhimi B,Yan Z,Jiang Z.Cu-based materials for enhanced C2+ product selectivity in photo-/electro-catalytic CO2 reduction: challenges and prospects.Nano-Micro Lett2024;16:64 PMCID:PMC10766933
|
| [42] |
Li D,Xiang H.How to go beyond C1 products with electrochemical reduction of CO2.Sustainable Energy Fuels2021;5:5893-914
|
| [43] |
Garza AJ,Head-gordon M.Mechanism of CO2 reduction at copper surfaces: pathways to C2 products.ACS Catal2018;8:1490-9
|
| [44] |
Lim CYJ,Arce-Ramos JM.Surface charge as activity descriptors for electrochemical CO2 reduction to multi-carbon products on organic-functionalised Cu.Nat Commun2023;14:335 PMCID:PMC9860078
|
| [45] |
Calle-Vallejo F.Theoretical considerations on the electroreduction of CO to C2 species on Cu(100) electrodes.Angew Chem Int Ed2013;52:7282-5
|
| [46] |
Ma M,Smith WA.Controllable hydrocarbon formation from the electrochemical reduction of CO2 over Cu nanowire arrays.Angew Chem Int Ed2016;55:6680-4
|
| [47] |
Wang L,Bertheussen E.Electrochemical carbon monoxide reduction on polycrystalline copper: effects of potential, pressure, and pH on selectivity toward multicarbon and oxygenated products.ACS Catal2018;8:7445-54
|
| [48] |
Rollier FA,Parastaev A.Restructuring of Cu-based catalysts during CO electroreduction: evidence for the dominant role of surface defects on the C2+ Product Selectivity.ACS Catal2024;14:13246-59
|
| [49] |
Chang B,Raziq F.Electrochemical reduction of carbon dioxide to multicarbon (C2+) products: challenges and perspectives.Energy Environ Sci2023;16:4714-58.
|
| [50] |
Zhang X,Gandionco KA,Zhang J.Electrocatalytic carbon dioxide reduction: from fundamental principles to catalyst design.Mater Today Adv2020;7:100074
|
| [51] |
Ma J,Kim SY.Integration of earth-abundant cocatalysts for high-performance photoelectrochemical energy conversion.J Energy Chem2024;88:336-55
|
| [52] |
Meng Y,Liu Y.Advancements in amorphous oxides for electrocatalytic carbon dioxide reduction.Mater Today Catal2024;7:100065
|
| [53] |
Fan D,Li Y.High selective electrocatalytic reduction of carbon dioxide to ethylene enabled by regulating the microenvironment over Cu-Ag nanowires.J Colloid Interface Sci2024;662:786-95
|
| [54] |
Li M,Wu T,Geng D.How to enhance the C2 products selectivity of copper-based catalysts towards electrochemical CO2 reduction?.Materials Today2023;67:320-43
|
| [55] |
Yu H,Chow YL,Zhang J.Revolutionizing electrochemical CO2 reduction to deeply reduced products on non-Cu-based electrocatalysts.Energy Environ Sci2024;17:5336-64
|
| [56] |
Giulimondi V,Pérez-Ramírez J.Challenges and opportunities in engineering the electronic structure of single-atom catalysts.ACS Catal2023;13:2981-97 PMCID:PMC9990067
|
| [57] |
Gu Z,Chen Z.Efficient electrocatalytic CO2 reduction to C2+ alcohols at defect-site-rich Cu surface.Joule2021;5:429-40
|
| [58] |
Xue L,Han C.Boosting hydrocarbon conversion via Cu-doping induced oxygen vacancies on CeO2 in CO2 electroreduction.J Energy Chem2025;100:66-76
|
| [59] |
Fang M,Han S.Boosting CO2 electroreduction to multi-carbon products via oxygen-rich vacancies and Ce4+ -O2- -Cu + Structure in Cu/CeO2 for Stabilizing Cu+.ChemCatChem2024;16:e202301266
|
| [60] |
Shen B,Wang H.Enhanced electrochemical CO2 reduction for high ethylene selectivity using iodine-doped copper oxide catalysts.J Alloys and Compd2024;980:173550
|
| [61] |
Jiang Y,Hong S.Enhanced electrochemical CO2 reduction to ethylene over CuO by synergistically tuning oxygen vacancies and metal doping.Cell Rep Phys Sci2021;2:100356
|
| [62] |
Bie Q,Wang Y,Peng Y.Electrocatalytic reduction of CO2 with enhanced C2 liquid products activity by the synergistic effect of Cu single atoms and oxygen vacancies.Chin J Catal2024;57:96-104
|
| [63] |
Feng X,Fan S.Grain-boundary-dependent CO2 electroreduction activity.J Am Chem Soc2015;137:4606-9
|
| [64] |
Bi X,Yan Y,Wu M.Grain boundaries assisting the generation of abundant Cu+ for highly selective electroreduction of CO2 to ethanol.Green Chem2024;26:5356-64
|
| [65] |
Chen Z,Liu B.Grain-boundary-rich copper for efficient solar-driven electrochemical CO2 reduction to ethylene and ethanol.J Am Chem Soc2020;142:6878-83
|
| [66] |
Zhang Y,Lyu P.Grain-boundary engineering boosted undercoordinated active sites for scalable conversion of CO2 to ethylene.ACS Nano2024;18:17483-91
|
| [67] |
Ding J,Xia L.Unconventional grain fragmentation creates high-density boundaries for efficient CO2-to-C2+ electro-conversion at ampere-level current density.Nano Energy2024;128:109945
|
| [68] |
Kong Y,Jia X.Constructing favorable microenvironment on copper grain boundaries for CO2 electro-conversion to multicarbon products.Nano Lett2024;24:9345-52
|
| [69] |
Wu W,Chen P.Regulation strategy of nanostructured engineering on indium-based materials for electrocatalytic conversion of CO2.Small2024;20:2305562
|
| [70] |
Zoubir O,Ait Ahsaine H.Current state of copper-based bimetallic materials for electrochemical CO2 reduction: a review.RSC Adv2022;12:30056-75 PMCID:PMC9585392
|
| [71] |
Liu G,Zhang Z,Yu F.Recent advances of the confinement effects boosting electrochemical CO2 reduction.Chem Asian J2023;18:e202200983
|
| [72] |
Kim JY,Lee JC.Quasi-graphitic carbon shell-induced Cu confinement promotes electrocatalytic CO2 reduction toward C2+ products.Nat Commun2021;12:3765 PMCID:PMC8217160
|
| [73] |
Fan L,Ma L.Evoking C2+ production from electrochemical CO2 reduction by the steric confinement effect of ordered porous Cu2O.Chem Sci2023;14:13851-9
|
| [74] |
Liu LX,Du H.Enriching the local concentration of CO intermediates on Cu cavities for the electrocatalytic reduction of CO2 to C2+ products.ACS Appl Mater Interfaces2023;15:16673-9
|
| [75] |
Pan Y,Xiong J.Protecting the state of Cu clusters and nanoconfinement engineering over hollow mesoporous carbon spheres for electrocatalytical C-C coupling.Appl Catal B Environ2022;306:121111
|
| [76] |
Liu C,Li J.Nanoconfinement engineering over hollow multi-shell structured copper towards efficient electrocatalytical C-C coupling.Angew Chem Int Ed2022;61:e202113498
|
| [77] |
Wu M,Mao J.Dimensional effect of oxide-derived Cu electrocatalysts to reduce CO2 into multicarbon compounds.Chem Eng J2024;499:156006
|
| [78] |
Xie H,Zhang Z.Achieving highly selective electrochemical CO2 reduction to C2H4 on Cu nanosheets.J Energy Chem2023;79:312-20
|
| [79] |
Wang P,Zhang B.Sub-1 nm Cu2O nanosheets for the electrochemical CO2 reduction and valence state-activity relationship.J Am Chem Soc2023;145:26133-43
|
| [80] |
Yang F,Li J.Boosting the electroreduction of CO2 to liquid products via nanostructure engineering of Cu2O catalysts.J Catal2024;432:115458
|
| [81] |
Gregorio GL, Burdyny T, Loiudice A, Iyengar P, Smith WA, Buonsanti R. Facet-dependent selectivity of Cu catalysts in electrochemical CO2 reduction at commercially viable current densities.ACS Catal2020;10:4854-62 PMCID:PMC7199425
|
| [82] |
Fu Y,Wu L.Crystal facet effect induced by different pretreatment of Cu2O nanowire electrode for enhanced electrochemical CO2 reduction to C2+ products.Chin J Catal2022;43:1066-73
|
| [83] |
Dong Y,Jin Z.Full-exposed Cu site of Cu2O-(100) driven high ethylene selectivity of carbon dioxide reduction.Appl Surf Sci2024;653:159243
|
| [84] |
Luo H,Ma JG.Surface modification of nano-Cu2O for controlling CO2 electrochemical reduction to ethylene and syngas.Angew Chem Int Ed2022;61:e202116736
|
| [85] |
Merino-Garcia I,Irabien A.Tailoring gas-phase CO2 electroreduction selectivity to hydrocarbons at Cu nanoparticles.Nanotechnology2018;29:014001
|
| [86] |
Rong W,Zang W.Size-dependent activity and selectivity of atomic-level copper nanoclusters during CO/CO2 electroreduction.Angew Chem Int Ed2021;60:466-72
|
| [87] |
Nam DH,Li J.Metal-organic frameworks mediate Cu coordination for selective CO2 electroreduction.J Am Chem Soc2018;140:11378-86
|
| [88] |
Su X,Zhou J.Complementary operando spectroscopy identification of in-situ generated metastable charge-asymmetry Cu2-CuN3 clusters for CO2 reduction to ethanol.Nat Commun2022;13:1322 PMCID:PMC8917205
|
| [89] |
Tabassum H,Zou R.Surface engineering of Cu catalysts for electrochemical reduction of CO2 to value-added multi-carbon products.Chem Catal2022;2:1561-93
|
| [90] |
Fang M,Wang Z.Hydrophobic, ultrastable Cuδ+ for Robust CO2 electroreduction to C2 products at ampere-current levels.J Am Chem Soc2023;145:11323-32
|
| [91] |
Mu S,Zhao R,Dong H.Molecular-scale insights into electrochemical reduction of CO2 on hydrophobically modified Cu surfaces.ACS Appl Mater Interfaces2021;13:47619-28
|
| [92] |
Xie MS,Li Y.Amino acid modified copper electrodes for the enhanced selective electroreduction of carbon dioxide towards hydrocarbons.Energy Environ Sci2016;9:1687-95
|
| [93] |
Wei X,Lyu K.Highly Selective reduction of CO2 to C2+ hydrocarbons at copper/polyaniline interfaces.ACS Catal2020;10:4103-11
|
| [94] |
Ma L,Fan L.Enhanced electroreduction of CO2 to C2+ fuels by the synergetic effect of polyaniline/CuO nanosheets hybrids.Nano Res2023;16:9065-72
|
| [95] |
Wakerley D,Ozanam F.Bio-inspired hydrophobicity promotes CO2 reduction on a Cu surface.Nat Mater2019;18:1222-7
|
| [96] |
Shi T,Feng H,Li Q.Evolution of triple-phase interface for enhanced electrochemical CO2 reduction.Chem Eng J2022;431:134348
|
| [97] |
Niu ZZ,Zhang XL.Hierarchical copper with inherent hydrophobicity mitigates electrode flooding for high-rate CO2 electroreduction to multicarbon products.J Am Chem Soc2021;143:8011-21
|
| [98] |
Liu Z,Kong S.Interfacial water tuning by intermolecular spacing for stable CO2 electroreduction to C2+ products.Angew Chem Int Ed2023;62:e202309319
|
| [99] |
Xie L,Zhu W.Cu-based catalyst designs in CO2 electroreduction: precise modulation of reaction intermediates for high-value chemical generation.Chem Sci2023;14:13629-60
|
| [100] |
Xie G,Fang Z.Dual-metal sites drive tandem electrocatalytic CO2 to C2+ products.Angew Chem Int Ed2024;63:e202412568
|
| [101] |
Zhu C,Qiao R.Selective tandem CO2-to-C2+ alcohol conversion at a single-crystal Au/Cu bimetallic interface.J Phys Chem C2023;127:3470-7
|
| [102] |
Zhang B,Li D,Bu R.Tandem strategy for electrochemical CO2 reduction reaction.Chem Catal2022;2:3395-429
|
| [103] |
Zhan C,Rettenmaier C.Key intermediates and Cu active sites for CO2 electroreduction to ethylene and ethanol.Nat Energy2024;9:1485-96 PMCID:PMC11659170
|
| [104] |
Qin Q,Chen L.Emerging Cu-Based tandem catalytic systems for CO2 electroreduction to multi-carbon products.Adv Mater Inter2024;11:2301049
|
| [105] |
Duan H,Ran L.In-situ electrochemical interface of Cu@Ag/C towards the ethylene electrosynthesis with adequate *CO supply.J Energy Chem2024;99:292-9
|
| [106] |
Jeon YE,Kim J.Selective production of ethylene from CO2 over CuAg tandem electrocatalysts.J Ind Eng Chem2022;116:191-8
|
| [107] |
Liu H,Wu M.High-performance carbon dioxide reduction to multi-carbon products on EDTA-modified Cu-Ag tandem catalyst.J Catal2024;429:115227
|
| [108] |
Luan P,Liu L.Selective electrosynthesis of ethanol via asymmetric C-C coupling in tandem CO2 reduction.ACS Catal2024;14:8776-85
|
| [109] |
Huang J,Oveisi E,Buonsanti R.Structural sensitivities in bimetallic catalysts for electrochemical CO2 reduction revealed by Ag-Cu nanodimers.J Am Chem Soc2019;141:2490-9
|
| [110] |
Ma Y,Sun M.Confined growth of silver-copper janus nanostructures with {100} facets for highly selective tandem electrocatalytic carbon dioxide reduction.Adv Mater2022;34:e2110607
|
| [111] |
Wei C,Ma H.Nanoscale management of CO transport in CO2 electroreduction: boosting faradaic efficiency to multicarbon products via nanostructured tandem electrocatalysts.Adv Funct Mater2023;33:2214992
|
| [112] |
Morales-guio CG,Nitopi SA.Improved CO2 reduction activity towards C2+ alcohols on a tandem gold on copper electrocatalyst.Nat Catal2018;1:764-71
|
| [113] |
Wang S,Choi H,Back S.Delicate control of a gold-copper oxide tandem structure enables the efficient production of high-value chemicals by electrochemical carbon dioxide reduction.Nano Energy2024;130:110176
|
| [114] |
Cao X,Li M.Enhanced ethylene formation from carbon dioxide reduction through sequential catalysis on Au decorated cubic Cu2O electrocatalyst.Eur J Inorg Chem2021;2021:2353-64
|
| [115] |
Zhu C,Zhang Z.Dynamic restructuring of epitaxial Au-Cu biphasic interface for tandem CO2-to-C2+ alcohol conversion.Chem2022;8:3288-301
|
| [116] |
Wei Z,Gao S,Cao R.Synergetic effects of gold-doped copper nanowires with low Au content for enhanced electrocatalytic CO2 reduction to multicarbon products.Nano Res2023;16:7777-83
|
| [117] |
Zheng Y,Ma Z.Seeded growth of gold-copper janus nanostructures as a tandem catalyst for efficient electroreduction of CO2 to C2+ products.Small2022;18:e2201695
|
| [118] |
Huang J,Yang J,Chen Q.Recent progress on copper-based bimetallic heterojunction catalysts for CO2 electrocatalysis: unlocking the mystery of product selectivity.Adv Sci2024;11:2309865
|
| [119] |
Li Y,Yu M.Strategies for improving product selectivity in electrocatalytic carbon dioxide reduction using copper-based catalysts.Adv Funct Mater2024;34:2410186
|
| [120] |
Wan L,Cheng J.Bimetallic Cu-Zn catalysts for electrochemical CO2 reduction: phase-separated versus core-shell distribution.ACS Catal2022;12:2741-8
|
| [121] |
Liu J,Qiao Z,Zhang H.Integration of cobalt phthalocyanine, acetylene black and Cu2O nanocubes for efficient electroreduction of CO2 to C2H4.ChemSusChem2023;16:e202300601
|
| [122] |
Kong X,Ke J.Understanding the effect of *CO coverage on C-C coupling toward CO2 electroreduction.Nano Lett2022;22:3801-8
|
| [123] |
Min S,He J,Lin W.Construction of cobalt porphyrin-modified Cu2O nanowire array as a tandem electrocatalyst for enhanced CO2 reduction to C2 products.Small2024;20:2400592
|
| [124] |
Chen Y,Chen C,Wang D.Single-atom catalysts: synthetic strategies and electrochemical applications.Joule2018;2:1242-64
|
| [125] |
Zhang L,Zhu G,Zhu H.Assembly of colloidal Cu nanoparticles and Ni-N-C nanocarbons to electrochemically boost cascade production of ethylene from CO2 reduction.J Mater Sci2023;58:17200-10
|
| [126] |
Zhang Y,Zhao C.Multicarbons generation factory: CuO/Ni single atoms tandem catalyst for boosting the productivity of CO2 electrocatalysis.Sci Bull2022;67:1679-87
|
| [127] |
Liu M,Luo T.Potential alignment in tandem catalysts enhances CO2-to-C2H4 conversion efficiencies.J Am Chem Soc2024;146:468-75
|
| [128] |
Meng DL,Si DH.Highly selective tandem electroreduction of CO2 to ethylene over atomically isolated nickel-nitrogen site/copper nanoparticle catalysts.Angew Chem Int Ed2021;60:25689-96
|
| [129] |
Chen B,Li N.Tandem catalysis for enhanced CO2 to ethylene conversion in neutral media.Adv Funct Mater2024;34:2310029
|
| [130] |
Paris AR.Ni-Al films on glassy carbon electrodes generate an array of oxygenated organics from CO2.ACS Catal2017;7:6815-20
|
| [131] |
Torelli DA,Crompton JC.Nickel-gallium-catalyzed electrochemical reduction of CO2 to highly reduced products at low overpotentials.ACS Catal2016;6:2100-4
|
| [132] |
Ding J,Ma X.A tin-based tandem electrocatalyst for CO2 reduction to ethanol with 80% selectivity.Nat Energy2023;8:1386-94
|
| [133] |
She X,Xu H,Ping Lau S.Challenges and opportunities in electrocatalytic CO2 reduction to chemicals and fuels.Angew Chem Int Ed2022;61:e202211396
|
| [134] |
Ewis D,Khaled M.Electrochemical reduction of CO2 into formate/formic acid: A review of cell design and operation.Sep Purif Technol2023;316:123811
|
| [135] |
Harthi A, Abri MA, Younus HA, Hajri RA. Criteria and cutting-edge catalysts for CO2 electrochemical reduction at the industrial scale.J CO2 Util2024;83:102819
|
| [136] |
Sajna M,Popelka A.Electrochemical system design for CO2 conversion: a comprehensive review.J Environ Chem Eng2023;11:110467
|
| [137] |
Kim J.Recent progress in carbon dioxide electrolyzer using gas diffusion electrode.Ceramist2021;24:96-108
|
| [138] |
Luo Y,Li Y.Valorizing carbon dioxide via electrochemical reduction on gas-diffusion electrodes.InfoMat2021;3:1313-32
|
| [139] |
Zhang FY,Tian N.Cu overlayers on tetrahexahedral Pd nanocrystals with high-index facets for CO2 electroreduction to alcohols.Chem Commun2017;53:8085-8
|
| [140] |
Salvatore D.Voltage matters when reducing CO2 in an electrochemical flow cell.ACS Energy Lett2020;5:215-20
|
| [141] |
Chen J,Zhao Y.Selective and stable CO2 electroreduction at high rates via control of local H2O/CO2 ratio.Nat Commun2024;15:5893 PMCID:PMC11246503
|
| [142] |
Lee G,Lee B.CO2 electroreduction to multicarbon products from carbonate capture liquid.Joule2023;7:1277-88
|
| [143] |
Ni W,Tang N.High-purity ethylene production via indirect carbon dioxide electrochemical reduction.Nat Commun2024;15:6078 PMCID:PMC11271605
|
| [144] |
Weekes DM,Reyes A,Berlinguette CP.Electrolytic CO2 reduction in a flow cell.Acc Chem Res2018;51:910-8
|
| [145] |
Sato S,Shirai S,Morikawa T.Enhanced performance of molecular electrocatalysts for CO2 reduction in a flow cell following K+ addition.Sci Adv2023;9:eadh9986
|
| [146] |
Ampelli C,Giusi D,Perathoner S.Electrode and cell design for CO2 reduction: a viewpoint.Catal Today2023;421:114217
|
| [147] |
Tufa RA,Ma M.Towards highly efficient electrochemical CO2 reduction: cell designs, membranes and electrocatalysts.Appl Energy2020;277:115557
|
| [148] |
Xing Z,Ripatti DS,Feng X.Enhancing carbon dioxide gas-diffusion electrolysis by creating a hydrophobic catalyst microenvironment.Nat Commun2021;12:136 PMCID:PMC7794506
|
| [149] |
Yang K,Smith WA.Role of the carbon-based gas diffusion layer on flooding in a gas diffusion electrode cell for electrochemical CO2 reduction.ACS Energy Lett2021;6:33-40
|
| [150] |
Jiang H,Li Y.Recent advances in solid-liquid-gas three-phase interfaces in electrocatalysis for energy conversion and storage.EcoMat2022;4:e12199
|
| [151] |
Wang J,Zang H.Atomically dispersed ga synergy lewis acid-base pairs in F-doped mesoporous Cu2O for efficient eletroreduction of CO2 to C2+ products.Adv Funct Mater2024;34:2404274
|
| [152] |
Yang C,Yu C.Engineering stable Cu+-Cu0 sites and oxygen defects in boron-doped copper oxide for electrocatalytic reduction of CO2 to C2+ products.Chem Eng J2024;484:149710
|
| [153] |
Chen Q,Zhou Y.Electrocatalytic CO2 reduction to C2+ products in flow cells.Adv Mater2024;36:2303902
|
| [154] |
Yu J,Ma Y.Acidic conditions for efficient carbon dioxide electroreduction in flow and MEA cells.Chem Catal2023;3:100670
|
| [155] |
Wang B,Peng C,Zheng G.Pd-induced polarized Cu0-Cu+ sites for electrocatalytic CO2-to-C2+ conversion in acidic medium.J Colloid Interface Sci2024;671:184-91
|
| [156] |
Wang Z,Qiu P.Advanced catalyst design and reactor configuration upgrade in electrochemical carbon dioxide conversion.Adv Mater2023;35:2303052
|
| [157] |
Choi W,Jung W,Na J.Origin of hydrogen incorporated into ethylene during electrochemical CO2 reduction in membrane electrode assembly.ACS Energy Lett2022;7:939-45
|
| [158] |
Rabiee H,Yang Y.Advances and challenges of carbon-free gas-diffusion electrodes (GDEs) for electrochemical CO2 reduction.Adv Funct Mater2025;35:2411195
|
| [159] |
Ge L,Li M.Electrochemical CO2 reduction in membrane-electrode assemblies.Chem2022;8:663-92
|
| [160] |
Gawel A,Siegmund D.Electrochemical CO2 reduction - the macroscopic world of electrode design, reactor concepts & economic aspects.iScience2022;25:104011
|
| [161] |
Lee T,Eo J.Acidic CO2 electroreduction for high CO2 utilization: catalysts, electrodes, and electrolyzers.Nanoscale2024;16:2235-49
|
| [162] |
Alinejad S,Li Y.Optimizing the use of a gas diffusion electrode setup for CO2 electrolysis imitating a zero-gap MEA design.J Catal2024;429:115209
|
| [163] |
Larrea C,Avilés-moreno JR.Multi-parameter study of CO2 electrochemical reduction from concentrated bicarbonate feed.J CO2 Util2022;57:101878
|
| [164] |
Bui JC,King AJ.Engineering catalyst-electrolyte microenvironments to optimize the activity and selectivity for the electrochemical reduction of CO2 on Cu and Ag.Acc Chem Res2022;55:484-94
|
| [165] |
Lai W,Zhang J,Huang H.Design strategies for markedly enhancing energy efficiency in the electrocatalytic CO2 reduction reaction.Energy Environ Sci2022;15:3603-29
|
| [166] |
Ozden A,Garcı́a de Arquer FP.High-rate and efficient ethylene electrosynthesis using a catalyst/promoter/transport layer.ACS Energy Lett2020;5:2811-8
|
| [167] |
He R,Hasan IMU.Advances in electrolyzer design and development for electrochemical CO2 reduction.EcoMat2023;5:e12346
|
| [168] |
Xia C,Jiang Q.Continuous production of pure liquid fuel solutions via electrocatalytic CO2 reduction using solid-electrolyte devices.Nat Energy2019;4:776-85
|
| [169] |
Gong Y.Gaining deep understanding of electrochemical CO2RR with in situ/operando techniques.Small Methods2023;7:2300702
|
| [170] |
Delmo EP,Song Y.In situ infrared spectroscopic evidence of enhanced electrochemical CO2 reduction and C-C coupling on oxide-derived copper.J Am Chem Soc2024;146:1935-45
|
| [171] |
Xu H,Zhu S.A minireview on selected applications of in situ infrared spectroscopy in studying CO2 electrochemical reduction reaction.Curr Opin Electrochem2023;41:101363
|
| [172] |
Chen L,Jiao X.Recent advances of in situ insights into CO2 reduction toward fuels.ChemCatChem2025;17:e202401388
|
| [173] |
Jin L.In situ spectroscopic methods for electrocatalytic CO2 reduction.Catalysts2020;10:481
|
| [174] |
Katayama Y,Giordano L.An in situ surface-enhanced infrared absorption spectroscopy study of electrochemical CO2 reduction: selectivity dependence on surface C-bound and O-bound reaction intermediates.J Phys Chem C2019;123:5951-63
|
| [175] |
Dutta A,Rahaman M,Broekmann P.Monitoring the chemical state of catalysts for CO2 electroreduction: an in operando study.ACS Catal2015;5:7498-502
|
| [176] |
Zhu P,Cai X.Understanding oxidation state of Cu-based catalysts for electrocatalytic CO2 reduction.J Mater Sci Technol2025;218:1-24
|
| [177] |
Firet NJ.Probing the reaction mechanism of CO2 electroreduction over Ag films via operando infrared spectroscopy.ACS Catal2017;7:606-12
|
| [178] |
Chen M,Qiao L.In-situ/operando raman techniques for in-depth understanding on electrocatalysis.Chem Eng J2023;461:141939
|
| [179] |
Celorrio V,Huang H.Relationship between Mn oxidation state changes and oxygen reduction activity in (La,Ca)MnO3 as probed by in situ XAS and XES.ACS Catal2021;11:6431-9
|
| [180] |
Song X,Sun X.In situ/operando characterization techniques for electrochemical CO2 reduction.Sci China Chem2023;66:315-23
|
| [181] |
You S,Liang S.Doping engineering of Cu-based catalysts for electrocatalytic CO2 reduction to multi-carbon products.Energy Environ Sci2024;17:5795-818
|
| [182] |
Popović S,Jovanovič P,Buonsanti R.Stability and degradation mechanisms of copper-based catalysts for electrochemical CO2 reduction.Angew Chem Int Ed2020;59:14736-46
|
| [183] |
He Q,Chen H.Achievements, challenges, and perspectives in the design of polymer binders for advanced lithium-ion batteries.Chem Soc Rev2024;53:7091-157
|