Cobalt Hexacyanoferrate as a Selective and High Current Density Formate Oxidation Electrocatalyst
暂无分享,去创建一个
S. Giménez | J. Arbiol | Pengyi Tang | Lijuan Han | S. Giancola | R. Dunin‐Borkowski | I. Sánchez-Molina | M. Heggen | J. Galán‐Mascarós | J. González-Cobos | S. Folkman
[1] G. Anilkumar,et al. Binary Pd−Ni Nanoalloy Particles over Carbon Support with Superior Alkaline Formate Fuel Electrooxidation Performance , 2019, ChemCatChem.
[2] S. Kamarudin,et al. Recent progress of anode catalysts and their support materials for methanol electrooxidation reaction , 2019, International Journal of Hydrogen Energy.
[3] J. Galán‐Mascarós,et al. Fluorine‐Doped Tin Oxide/Alumina as Long‐Term Robust Conducting Support for Earth‐Abundant Water Oxidation Electrocatalysts , 2019, ChemElectroChem.
[4] Hailiang Wang,et al. An Integrated CO2 Electrolyzer and Formate Fuel Cell Enabled by a Reversibly Restructuring Pb-Pd Bimetallic Catalyst. , 2019, Angewandte Chemie.
[5] P. Vernoux,et al. Towards a sustainable technology for H2 production: Direct lignin electrolysis in a continuous-flow Polymer Electrolyte Membrane reactor , 2019, Electrochemistry Communications.
[6] Parag A. Deshpande,et al. La0.80Sr0.20CoO3 as a noble-metal-free catalyst for the direct oxidation of formic acid under zero applied potential , 2019, Electrochemistry Communications.
[7] R. Finke,et al. Electrochemically Driven Water-Oxidation Catalysis Beginning with Six Exemplary Cobalt Polyoxometalates: Is It Molecular, Homogeneous Catalysis or Electrode-Bound, Heterogeneous CoO x Catalysis? , 2018, Journal of the American Chemical Society.
[8] Michael J. Schöning,et al. Toward a Hybrid Biosensor System for Analysis of Organic and Volatile Fatty Acids in Fermentation Processes , 2018, Front. Chem..
[9] M. Noroozifar,et al. Porous three-dimensional network of Pd–Cu aerogel toward formic acid oxidation , 2018, RSC advances.
[10] F. Karadaş,et al. Tuning the Electronic Properties of Prussian Blue Analogues for Efficient Water Oxidation Electrocatalysis: Experimental and Computational Studies. , 2018, Chemistry.
[11] Kate M. Waldie,et al. Transition Metal Hydride Catalysts for Sustainable Interconversion of CO2 and Formate: Thermodynamic and Mechanistic Considerations , 2018 .
[12] Deborah J. Jones,et al. Cobalt hexacyanoferrate supported on Sb-doped SnO2 as a non-noble catalyst for oxygen evolution in acidic medium , 2018 .
[13] Jae Kwang Lee,et al. Catalytically active highly metallic palladium on carbon support for oxidation of HCOO , 2017 .
[14] Shouheng Sun,et al. Stabilizing CuPd Nanoparticles via CuPd Coupling to WO2.72 Nanorods in Electrochemical Oxidation of Formic Acid. , 2017, Journal of the American Chemical Society.
[15] M. Schöning,et al. Optimization of an amperometric biosensor array for simultaneous measurement of ethanol, formate, d- and l-lactate , 2017 .
[16] J. Hirst,et al. Oxidation-State-Dependent Binding Properties of the Active Site in a Mo-Containing Formate Dehydrogenase , 2017, Journal of the American Chemical Society.
[17] Siti Kartom Kamarudin,et al. Direct liquid fuel cells: A review , 2017 .
[18] J. Morante,et al. Enhanced Activity and Acid pH Stability of Prussian Blue-type Oxygen Evolution Electrocatalysts Processed by Chemical Etching. , 2016, Journal of the American Chemical Society.
[19] Stève Baranton,et al. Development of Bismuth-Modified PtPd Nanocatalysts for the Electrochemical Reforming of Polyols into Hydrogen and Value-Added Chemicals , 2016 .
[20] Rong Chen,et al. Direct formate fuel cells: A review , 2016 .
[21] W. Shin,et al. Triple-pulse Method for Monitoring Formate in CO2 Conversion Process , 2016 .
[22] F. Karadaş,et al. A Novel Synthetic Route for the Preparation of an Amorphous Co/Fe Prussian Blue Coordination Compound with High Electrocatalytic Water Oxidation Activity. , 2016, Inorganic chemistry.
[23] X. Sun,et al. Superior anti-poisoning performance of graphenes versus carbon nanotubes as Pt catalysts supports for formate oxidation , 2016 .
[24] R. Behm,et al. Further Insights into the Formic Acid Oxidation Mechanism on Platinum: pH and Anion Adsorption Effects , 2015 .
[25] Jaeyoung Lee,et al. Influence of Solution pH on Pt Anode Catalyst in Direct Formic Acid Fuel Cells , 2015 .
[26] A. Manthiram,et al. Catalyst-selective, scalable membraneless alkaline direct formate fuel cells , 2015 .
[27] S. Boettcher,et al. Cobalt-iron (oxy)hydroxide oxygen evolution electrocatalysts: the role of structure and composition on activity, stability, and mechanism. , 2015, Journal of the American Chemical Society.
[28] C. Hsieh,et al. Electro-oxidation of methanol and formic acid on platinum nanoparticles with different oxidation levels , 2015 .
[29] H. Abruña,et al. Water Oxidation Catalysis by Co(II) Impurities in Co(III)4O4 Cubanes , 2014, Journal of the American Chemical Society.
[30] G. Soloveichik,et al. Liquid fuel cells , 2014, Beilstein journal of nanotechnology.
[31] R. Behm,et al. Formic Acid Electrooxidation on Noble‐Metal Electrodes: Role and Mechanistic Implications of pH, Surface Structure, and Anion Adsorption , 2014 .
[32] M. Koper,et al. The effect of pH on the electrocatalytic oxidation of formic acid/formate on platinum: A mechanistic study by surface-enhanced infrared spectroscopy coupled with cyclic voltammetry , 2014 .
[33] J. Galán‐Mascarós,et al. Light-Driven Water Oxidation with Metal Hexacyanometallate Heterogeneous Catalysts , 2014 .
[34] John W. Scott,et al. Direct evidence of a triple-path mechanism of formate electrooxidation on Pt black in alkaline media at varying temperature. Part I: The electrochemical studies , 2013 .
[35] S. Daniele,et al. Bismuth-Coated Mesoporous Platinum Microelectrodes as Sensors for Formic Acid Detection , 2012 .
[36] C. Kubiak,et al. Formate oxidation via β-deprotonation in [Ni(PR2NR′2)2(CH3CN)]2+ complexes , 2012 .
[37] Wei Chen,et al. PdAg Alloy Nanowires: Facile One-Step Synthesis and High Electrocatalytic Activity for Formic Acid Oxidation , 2012 .
[38] J. Hong,et al. Atomic-distribution-dependent electrocatalytic activity of Au-Pd bimetallic nanocrystals. , 2011, Angewandte Chemie.
[39] R. Finke,et al. Electrocatalytic water oxidation beginning with the cobalt polyoxometalate [Co4(H2O)2(PW9O34)2]10-: identification of heterogeneous CoOx as the dominant catalyst. , 2011, Journal of the American Chemical Society.
[40] Monte L. Helm,et al. Electrocatalytic oxidation of formate by [Ni(P(R)2N(R')2)2(CH3CN)]2+ complexes. , 2011, Journal of the American Chemical Society.
[41] Wei Chen,et al. Nanoneedle-Covered Pd−Ag Nanotubes: High Electrocatalytic Activity for Formic Acid Oxidation , 2010 .
[42] Weimin Wang,et al. High catalytic activity of ultrafine nanoporous palladium for electro-oxidation of methanol, ethanol, and formic acid , 2009 .
[43] Xingwen Yu,et al. Recent advances in direct formic acid fuel cells (DFAFC) , 2008 .
[44] F. Armstrong,et al. Enzymes as working or inspirational electrocatalysts for fuel cells and electrolysis. , 2008, Chemical reviews.
[45] Shouheng Sun,et al. Electro-oxidation of formic acid catalyzed by FePt nanoparticles. , 2006, Physical chemistry chemical physics : PCCP.
[46] H. Okamoto,et al. Stationary voltammogram for oxidation of formic acid on polycrystalline platinum , 2004 .
[47] Ulla Wollenberger,et al. An amperometric bi-enzyme sensor for determination of formate using cofactor regeneration. , 2003, Biosensors & bioelectronics.
[48] Yukihiko Matsumura,et al. Electrochemical Oxidation of Carbon Monoxide, Methanol, Formic Acid, Ethanol, and Acetic Acid on a Platinum Electrode under Hot Aqueous Conditions , 2002 .
[49] J. Navarro-Laboulais,et al. Charge transport in prussian blue films deposited on ito electrodes , 1996 .
[50] J. J. García-Jareño,et al. Impedance analysis of Prussian blue films deposited on ITO electrodes , 1995 .
[51] Zhimin Xue,et al. Electrochemistry , 2012, Proceedings of the National Academy of Sciences.
[52] A. Singh,et al. Hydrogen energy future with formic acid: a renewable chemical hydrogen storage system , 2016 .
[53] B. R. Scharifkerb. Oxidation of formate on hydrogen-loaded palladium , 2022 .