Understanding heterogeneous electrocatalytic carbon dioxide reduction through operando techniques
暂无分享,去创建一个
Zhi Wei Seh | Albertus D. Handoko | Boon Siang Yeo | Z. Seh | F. Wei | A. Handoko | B. Yeo | Fengxia Wei | Jenndy
[1] Z. Seh,et al. On the Role of Sulfur for the Selective Electrochemical Reduction of CO2 to Formate on CuS x Catalysts. , 2018, ACS applied materials & interfaces.
[2] W. Bras,et al. Insight into the Nature of Iron Sulfide Surfaces During the Electrochemical Hydrogen Evolution and CO2 Reduction Reactions. , 2018, ACS applied materials & interfaces.
[3] W. Goddard,et al. Electrochemical CO Reduction Builds Solvent Water into Oxygenate Products. , 2018, Journal of the American Chemical Society.
[4] M. Janik,et al. Existence of an Electrochemically Inert CO Population on Cu Electrodes in Alkaline pH , 2018, ACS Catalysis.
[5] Christopher J. Bartel,et al. Machine learning for heterogeneous catalyst design and discovery , 2018 .
[6] J. Nørskov,et al. Role of Subsurface Oxygen on Cu Surfaces for CO2 Electrochemical Reduction , 2018, The Journal of Physical Chemistry C.
[7] G. Goh,et al. Elucidation of thermally induced internal porosity in zinc oxide nanorods , 2018, Nano Research.
[8] M. Jones,et al. New Strategies for Probing Energy Systems with In Situ Liquid-Phase Transmission Electron Microscopy , 2018 .
[9] Dunfeng Gao,et al. Dynamic Changes in the Structure, Chemical State and Catalytic Selectivity of Cu Nanocubes during CO2 Electroreduction: Size and Support Effects. , 2018, Angewandte Chemie.
[10] Haotian Wang,et al. Isolated Ni single atoms in graphene nanosheets for high-performance CO2 reduction , 2018 .
[11] O. Edelenbosch,et al. Alternative pathways to the 1.5 °C target reduce the need for negative emission technologies , 2018, Nature Climate Change.
[12] A. Bell,et al. Effects of Anion Identity and Concentration on Electrochemical Reduction of CO2 , 2018 .
[13] Kanak Roy,et al. Ambient Pressure Photoelectron Spectroscopy: Opportunities in Catalysis from Solids to Liquids and Introducing Time Resolution , 2018 .
[14] Michael B. Ross,et al. Catalyst electro-redeposition controls morphology and oxidation state for selective carbon dioxide reduction , 2018, Nature Catalysis.
[15] Ke R. Yang,et al. Active sites of copper-complex catalytic materials for electrochemical carbon dioxide reduction , 2018, Nature Communications.
[16] M. Head‐Gordon,et al. Is Subsurface Oxygen Necessary for the Electrochemical Reduction of CO2 on Copper? , 2018, The journal of physical chemistry letters.
[17] C. Berlinguette,et al. Electrocatalytic Alloys for CO2 Reduction. , 2018, ChemSusChem.
[18] Yanwei Lum,et al. Stability of Residual Oxides in Oxide-Derived Copper Catalysts for Electrochemical CO2 Reduction Investigated with 18 O Labeling. , 2018, Angewandte Chemie.
[19] J. Nørskov,et al. Theoretical Investigations of the Electrochemical Reduction of CO on Single Metal Atoms Embedded in Graphene , 2017, ACS central science.
[20] G. Henkelman,et al. Detection of CO2•- in the Electrochemical Reduction of Carbon Dioxide in N,N-Dimethylformamide by Scanning Electrochemical Microscopy. , 2017, Journal of the American Chemical Society.
[21] V. Roddatis,et al. Environmental TEM Investigation of Electrochemical Stability of Perovskite and Ruddlesden–Popper Type Manganite Oxygen Evolution Catalysts , 2017 .
[22] M. Kanan,et al. Selective increase in CO2 electroreduction activity at grain-boundary surface terminations , 2017, Science.
[23] Hongxuan Guo,et al. Interfacial Electrochemistry in Liquids Probed with Photoemission Electron Microscopy. , 2017, Journal of the American Chemical Society.
[24] L. Pettersson,et al. Stability and Effects of Subsurface Oxygen in Oxide-Derived Cu Catalyst for CO2 Reduction , 2017 .
[25] M. Shao,et al. Direct Observation on Reaction Intermediates and the Role of Bicarbonate Anions in CO2 Electrochemical Reduction Reaction on Cu Surfaces. , 2017, Journal of the American Chemical Society.
[26] B. Yeo,et al. Characterization of Electrocatalytic Water Splitting and CO2 Reduction Reactions Using In Situ/Operando Raman Spectroscopy , 2017 .
[27] F. Calle‐Vallejo,et al. Structure- and Potential-Dependent Cation Effects on CO Reduction at Copper Single-Crystal Electrodes , 2017, Journal of the American Chemical Society.
[28] I. Yagi,et al. Development of a spectro-electrochemical cell for soft X-ray photon-in photon-out spectroscopy. , 2017, The Review of scientific instruments.
[29] J. Rossmeisl,et al. Enhanced Carbon Dioxide Electroreduction to Carbon Monoxide over Defect-Rich Plasma-Activated Silver Catalysts. , 2017, Angewandte Chemie.
[30] Nathan S. Lewis,et al. Machine-Learning Methods Enable Exhaustive Searches for Active Bimetallic Facets and Reveal Active Site Motifs for CO2 Reduction , 2017 .
[31] M. Klein,et al. Janus dendrimersomes coassembled from fluorinated, hydrogenated, and hybrid Janus dendrimers as models for cell fusion and fission , 2017, Proceedings of the National Academy of Sciences.
[32] Charlie Tsai,et al. Promoter Effects of Alkali Metal Cations on the Electrochemical Reduction of Carbon Dioxide. , 2017, Journal of the American Chemical Society.
[33] T. Uruga,et al. Operando 3D Visualization of Migration and Degradation of a Platinum Cathode Catalyst in a Polymer Electrolyte Fuel Cell. , 2017, Angewandte Chemie.
[34] Yushan Yan,et al. In Situ Infrared Spectroscopic Investigations of Pyridine-Mediated CO2 Reduction on Pt Electrocatalysts , 2017 .
[35] A. Bond,et al. Direct Detection of Electron Transfer Reactions Underpinning the Tin-Catalyzed Electrochemical Reduction of CO2 using Fourier-Transformed ac Voltammetry , 2017 .
[36] W. Goddard,et al. Subsurface oxide plays a critical role in CO2 activation by Cu(111) surfaces to form chemisorbed CO2, the first step in reduction of CO2 , 2017, Proceedings of the National Academy of Sciences.
[37] W. Goddard,et al. Cu metal embedded in oxidized matrix catalyst to promote CO2 activation and CO dimerization for electrochemical reduction of CO2 , 2017, Proceedings of the National Academy of Sciences.
[38] C. Jin,et al. An In situ TEM study of the surface oxidation of palladium nanocrystals assisted by electron irradiation. , 2017, Nanoscale.
[39] Jingguang G. Chen,et al. Electrochemical reduction of CO2 to synthesis gas with controlled CO/H2 ratios , 2017 .
[40] A. Hubin,et al. Electrodeposition of Highly Porous Pt Nanoparticles Studied by Quantitative 3D Electron Tomography: Influence of Growth Mechanisms and Potential Cycling on the Active Surface Area. , 2017, ACS applied materials & interfaces.
[41] Dunfeng Gao,et al. Plasma-Activated Copper Nanocube Catalysts for Efficient Carbon Dioxide Electroreduction to Hydrocarbons and Alcohols. , 2017, ACS nano.
[42] F. Calle‐Vallejo,et al. Spectroscopic Observation of a Hydrogenated CO Dimer Intermediate During CO Reduction on Cu(100) Electrodes. , 2017, Angewandte Chemie.
[43] Jingguang G. Chen,et al. The Central Role of Bicarbonate in the Electrochemical Reduction of Carbon Dioxide on Gold. , 2017, Journal of the American Chemical Society.
[44] Chengwu Yang,et al. IR spectroscopy applied to metal oxide surfaces: adsorbate vibrations and beyond , 2017 .
[45] Colin F. Dickens,et al. Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.
[46] Wilson A. Smith,et al. Probing the Reaction Mechanism of CO2 Electroreduction over Ag Films via Operando Infrared Spectroscopy , 2017 .
[47] Marco Favaro,et al. Subsurface Oxygen in Oxide-Derived Copper Electrocatalysts for Carbon Dioxide Reduction. , 2017, The journal of physical chemistry letters.
[48] M. O'connell,et al. Advances in surface-enhanced vibrational spectroscopy at electrochemical interfaces , 2017 .
[49] P. Ajayan,et al. A metal-free electrocatalyst for carbon dioxide reduction to multi-carbon hydrocarbons and oxygenates , 2016, Nature Communications.
[50] B. Yeo,et al. Tuning the Selectivity of Carbon Dioxide Electroreduction toward Ethanol on Oxide-Derived CuxZn Catalysts , 2016 .
[51] B. Ren,et al. Novel Electrochemical Raman Spectroscopy Enabled by Water Immersion Objective. , 2016, Analytical chemistry.
[52] Rongming Wang,et al. Tip-Enhanced Raman Spectroscopy. , 2016, Analytical chemistry.
[53] K. Mayrhofer,et al. Importance and Challenges of Electrochemical in Situ Liquid Cell Electron Microscopy for Energy Conversion Research. , 2016, Accounts of chemical research.
[54] Oleksandr Voznyy,et al. Enhanced electrocatalytic CO2 reduction via field-induced reagent concentration , 2016, Nature.
[55] Y. Surendranath,et al. Inhibited proton transfer enhances Au-catalyzed CO2-to-fuels selectivity , 2016, Proceedings of the National Academy of Sciences.
[56] E. Stach,et al. Highly selective plasma-activated copper catalysts for carbon dioxide reduction to ethylene , 2016, Nature Communications.
[57] André,et al. Formation of Copper Catalysts for CO2 Reduction with High Ethylene/Methane Product Ratio Investigated with In Situ X-ray Absorption Spectroscopy. , 2016, The journal of physical chemistry letters.
[58] A. Barbour,et al. X-ray Crystal Truncation Rod Studies of Surface Oxidation and Reduction on Pt(111) , 2016 .
[59] Jinlong Yang,et al. Partially oxidized atomic cobalt layers for carbon dioxide electroreduction to liquid fuel , 2016, Nature.
[60] J. Boily,et al. Mapping Electrochemical Heterogeneity at Iron Oxide Surfaces: A Local Electrochemical Impedance Study. , 2015, Langmuir : the ACS journal of surfaces and colloids.
[61] Abhijit Dutta,et al. Monitoring the Chemical State of Catalysts for CO2 Electroreduction: An In Operando Study , 2015 .
[62] R. Schlögl,et al. Photoelectron Spectroscopy at the Graphene-Liquid Interface Reveals the Electronic Structure of an Electrodeposited Cobalt/Graphene Electrocatalyst. , 2015, Angewandte Chemie.
[63] Jing Shen,et al. Catalysts and Reaction Pathways for the Electrochemical Reduction of Carbon Dioxide. , 2015, The journal of physical chemistry letters.
[64] P. Yang,et al. Covalent organic frameworks comprising cobalt porphyrins for catalytic CO2 reduction in water , 2015, Science.
[65] Luke E K Achenie,et al. Machine-Learning-Augmented Chemisorption Model for CO2 Electroreduction Catalyst Screening. , 2015, The journal of physical chemistry letters.
[66] A. Dey,et al. Intermediates Involved in the 2e(-)/2H(+) Reduction of CO2 to CO by Iron(0) Porphyrin. , 2015, Journal of the American Chemical Society.
[67] J. Mizuki,et al. Roles of transition metals interchanging with lithium in electrode materials. , 2015, Physical chemistry chemical physics : PCCP.
[68] Z. Hussain,et al. Using “Tender” X-ray Ambient Pressure X-Ray Photoelectron Spectroscopy as A Direct Probe of Solid-Liquid Interface , 2015, Scientific Reports.
[69] Andrew B. Bocarsly,et al. Mechanistic Insights into the Reduction of CO2 on Tin Electrodes using in Situ ATR-IR Spectroscopy , 2015 .
[70] Jing Kong,et al. Molecular selectivity of graphene-enhanced Raman scattering. , 2015, Nano letters.
[71] Chunguang Chen,et al. Selective Electrochemical Reduction of Carbon Dioxide to Ethylene and Ethanol on Copper(I) Oxide Catalysts , 2015 .
[72] P. Zwart,et al. Simultaneous detection of electronic structure changes from two elements of a bifunctional catalyst using wavelength-dispersive X-ray emission spectroscopy and in situ electrochemistry. , 2015, Physical chemistry chemical physics : PCCP.
[73] M. Beleggia,et al. Environmental TEM Study of Electron Beam Induced Electrochemistry of Pr0.64Ca0.36MnO3 Catalysts for Oxygen Evolution , 2015 .
[74] B. L. Mehdi,et al. Observation and quantification of nanoscale processes in lithium batteries by operando electrochemical (S)TEM. , 2015, Nano letters.
[75] A. Peterson,et al. Oxygen-induced changes to selectivity-determining steps in electrocatalytic CO2 reduction. , 2015, Physical chemistry chemical physics : PCCP.
[76] J. Gregoire,et al. The evolution of the polycrystalline copper surface, first to Cu(111) and then to Cu(100), at a fixed CO₂RR potential: a study by operando EC-STM. , 2014, Langmuir : the ACS journal of surfaces and colloids.
[77] F. Ross,et al. Electron–Water Interactions and Implications for Liquid Cell Electron Microscopy , 2014 .
[78] K. Phani,et al. Selective reduction of CO2 to formate through bicarbonate reduction on metal electrodes: new insights gained from SG/TC mode of SECM. , 2014, Chemical communications.
[79] A. Gewirth,et al. In Situ Surface-Enhanced Raman Spectroscopy of the Electrochemical Reduction of Carbon Dioxide on Silver with 3,5-Diamino-1,2,4-Triazole , 2014 .
[80] Nongnuch Artrith,et al. Understanding the composition and activity of electrocatalytic nanoalloys in aqueous solvents: a combination of DFT and accurate neural network potentials. , 2014, Nano letters.
[81] Matthew W. Kanan,et al. Electroreduction of carbon monoxide to liquid fuel on oxide-derived nanocrystalline copper , 2014, Nature.
[82] J. L. Yang,et al. Chemical mapping of a single molecule by plasmon-enhanced Raman scattering , 2013, Nature.
[83] Jens K Nørskov,et al. Understanding Trends in the Electrocatalytic Activity of Metals and Enzymes for CO2 Reduction to CO. , 2013, The journal of physical chemistry letters.
[84] A. Gross,et al. Structure and local reactivity of PdAg/Pd(111) surface alloys. , 2013, Physical chemistry chemical physics : PCCP.
[85] T. Schmitt,et al. A Multispectroscopic Study of 3d Orbitals in Cobalt Carboxylates: The High Sensitivity of 2p3d Resonant X-ray Emission Spectroscopy to the Ligand Field , 2012, Angewandte Chemie.
[86] F. Zaera. Infrared Absorption Spectroscopy of Adsorbed CO: New Applications in Nanocatalysis for an Old Approach , 2012 .
[87] 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.
[88] Thomas F. Jaramillo,et al. New insights into the electrochemical reduction of carbon dioxide on metallic copper surfaces , 2012 .
[89] Robert Hovden,et al. Three-dimensional tracking and visualization of hundreds of Pt-Co fuel cell nanocatalysts during electrochemical aging. , 2012, Nano letters.
[90] Andrew A. Peterson,et al. How copper catalyzes the electroreduction of carbon dioxide into hydrocarbon fuels , 2010 .
[91] R. Mathies,et al. Identification of hydroperoxy species as reaction intermediates in the electrochemical evolution of oxygen on gold. , 2010, Chemphyschem : a European journal of chemical physics and physical chemistry.
[92] P. Glatzel,et al. In situ characterization of the 5d density of states of Pt nanoparticles upon adsorption of CO. , 2010, Journal of the American Chemical Society.
[93] Renato Zenobi,et al. Performing tip‐enhanced Raman spectroscopy in liquids , 2009 .
[94] A. Bard,et al. Electrocatalytic activity of Pd-Co bimetallic mixtures for formic acid oxidation studied by scanning electrochemical microscopy. , 2009, Analytical chemistry.
[95] A. Bond,et al. Study of the underlying electrochemistry of polycrystalline gold electrodes in aqueous solution and electrocatalysis by large amplitude fourier transformed alternating current voltammetry. , 2008, Langmuir : the ACS journal of surfaces and colloids.
[96] A. Bond,et al. Large-amplitude Fourier transformed high-harmonic alternating current cyclic voltammetry: kinetic discrimination of interfering Faradaic processes at glassy carbon and at boron-doped diamond electrodes. , 2004, Analytical chemistry.
[97] F. D. Groot,et al. High-Resolution X-ray Emission and X-ray Absorption Spectroscopy , 2001 .
[98] A. Bard,et al. Scanning electrochemical microscopy. , 2001, Annual review of analytical chemistry.
[99] J. Augustynski,et al. A Surface Enhanced Roman Scattering Study of the Intermediate and Poisoning Species Formed during the Electrochemical Reduction of CO 2 on Copper , 1997 .
[100] H. Ogasawara,et al. Carbon monoxide adsorption on copper and silver electrodes during carbon dioxide electroreduction studied by infrared reflection absorption spectroscopy and surface-enhanced Raman spectroscopy , 1996 .
[101] Y. Hori,et al. Infrared spectroscopy of adsorbed CO and intermediate species in electrochemical reduction of CO2 to hydrocarbons on a Cu electrode , 1995 .
[102] T. Wadayama,et al. Electrochemical reduction of CO2 on silver as probed by surface-enhanced Raman scattering , 1995 .
[103] Jens K. Nørskov,et al. A New Procedure for Particle Size Determination by EXAFS Based on Molecular Dynamics Simulations , 1993 .
[104] K. Itaya,et al. Scanning tunneling microscope for electrochemistry ― a new concept for the in situ scanning tunneling microscope in electrolyte solutions , 1988 .
[105] C. Gerber,et al. Surface Studies by Scanning Tunneling Microscopy , 1982 .
[106] R. Cooney,et al. Carbon dioxide conversion to hydrocarbons at silver electrode surfaces: Raman Spectroscpic evidence for surface carbon intermediates , 1980 .
[107] M. Albrecht,et al. Anomalously intense Raman spectra of pyridine at a silver electrode , 1977 .
[108] Thomas W. Hamann,et al. Potential-sensing electrochemical atomic force microscopy for in operando analysis of water-splitting catalysts and interfaces , 2017, Nature Energy.
[109] S. Maldonado,et al. Electrochemical Measurements in In Situ TEM Experiments , 2017 .
[110] D. Macfarlane,et al. Bioinspired Electrocatalytic CO2 Reduction by Bovine Serum Albumin-Capped Silver Nanoclusters Mediated by [α-SiW12O40 ](4-). , 2016, ChemSusChem.
[111] H. Bluhm,et al. Liquid/Solid Interfaces Studied by Ambient Pressure HAXPES , 2016 .
[112] K. Lackner,et al. Sustainable hydrocarbon fuels by recycling CO2 and H2O with renewable or nuclear energy , 2011 .
[113] A. Wiȩckowski,et al. In-situ spectroscopic studies of adsorption at the electrode and electrocatalysis , 2007 .
[114] J. Woicik,et al. Diffraction Anomalous Fine Structure: XAFS with Virtual Photoelectrons , 1993 .
[115] Y. Hori,et al. Product Selectivity Affected by Cationic Species in Electrochemical Reduction of CO2 and CO at a Cu Electrode , 1991 .
[116] A. Bard,et al. Scanning electrochemical microscopy. Introduction and principles , 1989 .
[117] Gerber,et al. Atomic Force Microscope , 2020, Definitions.
[118] H. Siegbahn,et al. ESCA applied to liquids , 1973 .