In-situ spectroscopic probe of the intrinsic structure feature of single-atom center in electrochemical CO/CO2 reduction to methanol
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Yanguang Li | Sung-Fu Hung | Bin Liu | Xiong Zhang | Yanqiang Huang | M. Robert | Thomas Groizard | Jie Ding | Jian Zhao | Xuning Li | E. Boutin | Binbin Pan | X. Ren | Junming Shao | Aude Salamé | Shi-bin Wang | Wenping Zeng | Wenjing Huang | Chengyu Liu | Xinyi Ren | Shifu Wang
[1] Tuo Wang,et al. Selective CO2 electroreduction to methanol via enhanced oxygen bonding , 2022, Nature communications.
[2] Jia Li,et al. Stimulating the Pre-Catalyst Redox Reaction and the Proton–Electron Transfer Process of Cobalt Phthalocyanine for CO2 Electroreduction , 2022, The Journal of Physical Chemistry C.
[3] M. Robert,et al. On the existence and role of formaldehyde during aqueous electrochemical reduction of carbon monoxide to methanol by cobalt phthalocyanine. , 2022, Chemistry.
[4] Chunxiang Li,et al. The targeted multi-electrons transfer for acetic acid and ethanol obtained with (n-Bu4N)3SVW11O40 and in synergetic catalysis in CO2 electroreduction , 2022, Journal of Power Sources.
[5] Gengfeng Zheng,et al. Dual-Atomic Cu Sites for Electrocatalytic CO Reduction to C2+ Products , 2021, ACS Materials Letters.
[6] Qinghong Zhang,et al. Electrocatalytic reduction of CO2 and CO to multi-carbon compounds over Cu-based catalysts. , 2021, Chemical Society reviews.
[7] M. Virginie,et al. Highlights and challenges in the selective reduction of carbon dioxide to methanol , 2021, Nature Reviews Chemistry.
[8] Shuo Zhang,et al. Graphdiyne/Graphene Heterostructure: A Universal 2D Scaffold Anchoring Monodispersed Transition-Metal Phthalocyanines for Selective and Durable CO2 Electroreduction. , 2021, Journal of the American Chemical Society.
[9] M. Robert,et al. Molecular Electrochemical Reduction of CO2 beyond Two Electrons , 2021 .
[10] Danielle A. Salvatore,et al. An industrial perspective on catalysts for low-temperature CO2 electrolysis , 2021, Nature Nanotechnology.
[11] Haotian Wang,et al. Direct and continuous generation of pure acetic acid solutions via electrocatalytic carbon monoxide reduction , 2020, Proceedings of the National Academy of Sciences.
[12] Hao Zhang,et al. Selective CO-to-acetate electroreduction via intermediate adsorption tuning on ordered Cu–Pd sites , 2020, Nature Catalysis.
[13] B. Yakobson,et al. Building a stable cationic molecule/electrode interface for highly efficient and durable CO2 reduction at an industrially relevant current , 2020 .
[14] B. Yeo,et al. Formation of C–C bonds during electrocatalytic CO2 reduction on non-copper electrodes , 2020 .
[15] Pengfei Wei,et al. Enhancing CO2 Electroreduction to Methane with Cobalt Phthalocyanine and Zinc-Nitrogen-Carbon Tandem Catalyst. , 2020, Angewandte Chemie.
[16] M. Robert,et al. Molecular catalysis of CO2 reduction: recent advances and perspectives in electrochemical and light-driven processes with selected Fe, Ni and Co aza macrocyclic and polypyridine complexes. , 2020, Chemical Society reviews.
[17] G. Mul,et al. Infrared Analysis of Interfacial Phenomena during Electrochemical Reduction of CO2 over Polycrystalline Copper Electrodes , 2020 .
[18] C. McCrory,et al. Determining the coordination environment and electronic structure of polymer-encapsulated cobalt phthalocyanine under electrocatalytic CO2 reduction conditions using in situ X-Ray absorption spectroscopy. , 2020, Dalton transactions.
[19] Qinghong Zhang,et al. Electrocatalytic reduction of CO2 to ethylene and ethanol through hydrogen-assisted C–C coupling over fluorine-modified copper , 2020, Nature Catalysis.
[20] S. S. Sreejith,et al. Electrocatalytic Reduction of CO2 to Acetic Acid by a Molecular Manganese Corrole Complex , 2020, Angewandte Chemie.
[21] M. Robert,et al. Manifesto for the routine use of NMR for the liquid product analysis of aqueous CO2 reduction: from comprehensive chemical shift data to formaldehyde quantification in water. , 2020, Dalton transactions.
[22] F. Jiao,et al. Carbon monoxide electroreduction as an emerging platform for carbon utilization , 2019, Nature Catalysis.
[23] Christine M. Gabardo,et al. Molecular tuning of CO2-to-ethylene conversion , 2019, Nature.
[24] Christine M. Gabardo,et al. Continuous Carbon Dioxide Electroreduction to Concentrated Multi-carbon Products Using a Membrane Electrode Assembly , 2019, Joule.
[25] Christine M. Gabardo,et al. Constraining CO coverage on copper promotes high-efficiency ethylene electroproduction , 2019, Nature Catalysis.
[26] Z. Tian,et al. Highly Selective Production of Ethylene by Electroreduction of Carbon Monoxide. , 2019, Angewandte Chemie.
[27] T. Jaramillo,et al. Aqueous Electrochemical Reduction of Carbon Dioxide and Carbon Monoxide into Methanol with Cobalt Phthalocyanine. , 2019, Angewandte Chemie.
[28] Hailiang Wang,et al. Domino electroreduction of CO2 to methanol on a molecular catalyst , 2019, Nature.
[29] M. Fontecave,et al. Electroreduction of CO2 on Single-Site Copper-Nitrogen-Doped Carbon Material: Selective Formation of Ethanol and Reversible Restructuration of the Metal Sites. , 2019, Angewandte Chemie.
[30] M. Fontecave,et al. Electroreduction of CO 2 on Single‐Site Copper‐Nitrogen‐Doped Carbon Material: Selective Formation of Ethanol and Reversible Restructuration of the Metal Sites , 2019, Angewandte Chemie.
[31] F. Calle‐Vallejo,et al. Advances and challenges in understanding the electrocatalytic conversion of carbon dioxide to fuels , 2019, Nature Energy.
[32] S. S. Sreejith,et al. Molecular cobalt corrole complex for the heterogeneous electrocatalytic reduction of carbon dioxide , 2019, Nature Communications.
[33] Adam C. Nielander,et al. Electrochemically converting carbon monoxide to liquid fuels by directing selectivity with electrode surface area , 2019, Nature Catalysis.
[34] Danielle A. Salvatore,et al. Molecular electrocatalysts can mediate fast, selective CO2 reduction in a flow cell , 2019, Science.
[35] O. Voznyy,et al. Binding Site Diversity Promotes CO2 Electroreduction to Ethanol. , 2019, Journal of the American Chemical Society.
[36] M. Jaroniec,et al. Understanding the Roadmap for Electrochemical Reduction of CO2 to Multi-Carbon Oxygenates and Hydrocarbons on Copper-Based Catalysts. , 2019, Journal of the American Chemical Society.
[37] E. Reisner,et al. Electro- and Solar-Driven Fuel Synthesis with First Row Transition Metal Complexes , 2019, Chemical reviews.
[38] J. Rossmeisl,et al. Electrochemical CO Reduction: A Property of the Electrochemical Interface. , 2019, Journal of the American Chemical Society.
[39] Matthew W. Kanan,et al. Carbon Monoxide Gas Diffusion Electrolysis that Produces Concentrated C2 Products with High Single-Pass Conversion , 2019, Joule.
[40] M. Cheng,et al. CO Electroreduction: Current Development and Understanding of Cu-Based Catalysts , 2018, ACS Catalysis.
[41] Feng Jiao,et al. High-rate electroreduction of carbon monoxide to multi-carbon products , 2018, Nature Catalysis.
[42] K. Daasbjerg,et al. Chemically and electrochemically catalysed conversion of CO2 to CO with follow-up utilization to value-added chemicals , 2018, Nature Catalysis.
[43] Jun Luo,et al. High Selectivity Toward C2H4 Production over Cu Particles Supported by Butterfly-Wing-Derived Carbon Frameworks. , 2018, ACS applied materials & interfaces.
[44] Tao Zhang,et al. Atomically dispersed Ni(i) as the active site for electrochemical CO2 reduction , 2018 .
[45] P. Yang,et al. Copper nanoparticle ensembles for selective electroreduction of CO2 to C2–C3 products , 2017, Proceedings of the National Academy of Sciences.
[46] Christopher J. Chang,et al. Supramolecular Porphyrin Cages Assembled at Molecular–Materials Interfaces for Electrocatalytic CO Reduction , 2017, ACS central science.
[47] Yuhan Sun,et al. Metal-Free Nitrogen-Doped Mesoporous Carbon for Electroreduction of CO2 to Ethanol. , 2017, Angewandte Chemie.
[48] Manoj K. Kesharwani,et al. Frequency and zero-point vibrational energy scale factors for double-hybrid density functionals (and other selected methods): can anharmonic force fields be avoided? , 2015, The journal of physical chemistry. A.
[49] Matthew W. Kanan,et al. Electroreduction of carbon monoxide to liquid fuel on oxide-derived nanocrystalline copper , 2014, Nature.
[50] M. Koper,et al. Two pathways for the formation of ethylene in CO reduction on single-crystal copper electrodes. , 2012, Journal of the American Chemical Society.
[51] Andrew A. Peterson,et al. Activity Descriptors for CO2 Electroreduction to Methane on Transition-Metal Catalysts , 2012 .
[52] M. Koper,et al. Electrochemical reduction of carbon dioxide on copper electrodes , 2017 .
[53] S. Grimme,et al. Efficient and Accurate Double-Hybrid-Meta-GGA Density Functionals-Evaluation with the Extended GMTKN30 Database for General Main Group Thermochemistry, Kinetics, and Noncovalent Interactions. , 2011, Journal of chemical theory and computation.
[54] Andrew A. Peterson,et al. How copper catalyzes the electroreduction of carbon dioxide into hydrocarbon fuels , 2010 .
[55] C. Cramer,et al. Universal solvation model based on solute electron density and on a continuum model of the solvent defined by the bulk dielectric constant and atomic surface tensions. , 2009, The journal of physical chemistry. B.
[56] Xianxi Zhang,et al. Theoretical investigation of the molecular, electronic structures and vibrational spectra of a series of first transition metal phthalocyanines. , 2007, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[57] F. Weigend. Accurate Coulomb-fitting basis sets for H to Rn. , 2006, Physical chemistry chemical physics : PCCP.
[58] F. Weigend,et al. Balanced basis sets of split valence, triple zeta valence and quadruple zeta valence quality for H to Rn: Design and assessment of accuracy. , 2005, Physical chemistry chemical physics : PCCP.
[59] Thomas Bligaard,et al. Trends in the exchange current for hydrogen evolution , 2005 .
[60] H. Jónsson,et al. Origin of the Overpotential for Oxygen Reduction at a Fuel-Cell Cathode , 2004 .
[61] V. Barone,et al. Toward reliable density functional methods without adjustable parameters: The PBE0 model , 1999 .