Self-limiting thin film deposition of amorphous metal oxides from aprotic solvents for oxygen evolution electrocatalysis

We deposit self-limiting amorphous metal oxide films via in situ superoxide generation from dimethyl formamide, yielding efficient oxygen evolution reaction (OER) catalysis and offering promise for environmentally-friendly energy technologies.

[1]  Shenggao Wang,et al.  Intercalation and elimination of carbonate ions of NiCo layered double hydroxide for enhanced oxygen evolution catalysis , 2020 .

[2]  Jian-guo Tang,et al.  A review on non-noble metal based electrocatalysis for the oxygen evolution reaction , 2020 .

[3]  J. S. Lee,et al.  Precipitating Metal Nitrate Deposition of Amorphous Metal Oxyhydroxide Electrodes Containing Ni, Fe, and Co for Electrocatalytic Water Oxidation , 2019, ACS Catalysis.

[4]  E. Medeiros,et al.  1D hollow MFe2O4 (M = Cu, Co, Ni) fibers by Solution Blow Spinning for oxygen evolution reaction. , 2019, Journal of colloid and interface science.

[5]  K. Wijayantha,et al.  Electrocatalytic activity of CoFe2O4 thin films prepared by AACVD towards the oxygen evolution reaction in alkaline media , 2018 .

[6]  Zhong Lin Wang,et al.  Electrocatalytic oxygen evolution reaction for energy conversion and storage: A comprehensive review , 2017 .

[7]  Abdullah M. Asiri,et al.  Design and Application of Foams for Electrocatalysis , 2017 .

[8]  Colin F. Dickens,et al.  Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.

[9]  R. Rawat,et al.  Rapid Synthesis of Cobalt Nitride Nanowires: Highly Efficient and Low-Cost Catalysts for Oxygen Evolution. , 2016, Angewandte Chemie.

[10]  Xile Hu,et al.  Oxidatively Electrodeposited Thin-Film Transition Metal (Oxy)hydroxides as Oxygen Evolution Catalysts. , 2016, Journal of the American Chemical Society.

[11]  X. Lou,et al.  Formation of Prussian‐Blue‐Analog Nanocages via a Direct Etching Method and their Conversion into Ni–Co‐Mixed Oxide for Enhanced Oxygen Evolution , 2016, Advanced materials.

[12]  Mohd Ali Hashim,et al.  Superoxide Ion: Generation and Chemical Implications. , 2016, Chemical reviews.

[13]  A. Bell,et al.  Electrochemical Study of the Energetics of the Oxygen Evolution Reaction at Nickel Iron (Oxy)Hydroxide Catalysts , 2015 .

[14]  M. Heyns,et al.  Self-limiting electropolymerization of ultrathin, pinhole-free poly(phenylene oxide) films on carbon nanosheets , 2015 .

[15]  Yong Wang,et al.  In situ cobalt-cobalt oxide/N-doped carbon hybrids as superior bifunctional electrocatalysts for hydrogen and oxygen evolution. , 2015, Journal of the American Chemical Society.

[16]  Fang Song,et al.  Ultrathin cobalt-manganese layered double hydroxide is an efficient oxygen evolution catalyst. , 2014, Journal of the American Chemical Society.

[17]  H. Fei,et al.  Efficient electrocatalytic oxygen evolution on amorphous nickel-cobalt binary oxide nanoporous layers. , 2014, ACS nano.

[18]  Charles C. L. McCrory,et al.  Benchmarking heterogeneous electrocatalysts for the oxygen evolution reaction. , 2013, Journal of the American Chemical Society.

[19]  Michael P. Brandon,et al.  Redox and electrochemical water splitting catalytic properties of hydrated metal oxide modified electrodes. , 2013, Physical chemistry chemical physics : PCCP.

[20]  C. Berlinguette,et al.  Water oxidation catalysis: electrocatalytic response to metal stoichiometry in amorphous metal oxide films containing iron, cobalt, and nickel. , 2013, Journal of the American Chemical Society.

[21]  D. Stolten,et al.  A comprehensive review on PEM water electrolysis , 2013 .

[22]  M. Lyons,et al.  An electrochemical impedance study of the oxygen evolution reaction at hydrous iron oxide in base. , 2013, Physical chemistry chemical physics : PCCP.

[23]  S. Boettcher,et al.  Solution-cast metal oxide thin film electrocatalysts for oxygen evolution. , 2012, Journal of the American Chemical Society.

[24]  H. Dai,et al.  Co₃O₄ nanocrystals on graphene as a synergistic catalyst for oxygen reduction reaction. , 2011, Nature materials.

[25]  T. Mallouk,et al.  A High Yield Synthesis of Ligand-Free Iridium Oxide Nanoparticles with High Electrocatalytic Activity , 2011 .

[26]  Sanjeev Mukerjee,et al.  Influence of Nonaqueous Solvents on the Electrochemistry of Oxygen in the Rechargeable Lithium−Air Battery , 2010 .

[27]  R. Murray,et al.  Efficient Electro-Oxidation of Water near Its Reversible Potential by a Mesoporous IrOx Nanoparticle Film , 2009 .

[28]  F. Berkemeier,et al.  On the physical interpretation of constant phase elements , 2009 .

[29]  Michael P. Brandon,et al.  The significance of electrochemical impedance spectra recorded during active oxygen evolution for oxide covered Ni, Co and Fe electrodes in alkaline solution , 2009 .

[30]  M. Merrill,et al.  Metal Oxide Catalysts for the Evolution of O2 from H2O , 2008 .

[31]  J. Fierro,et al.  Hydrogen peroxide synthesis: an outlook beyond the anthraquinone process. , 2006, Angewandte Chemie.

[32]  N. Lewis,et al.  Powering the planet: Chemical challenges in solar energy utilization , 2006, Proceedings of the National Academy of Sciences.

[33]  Jeffrey W. Long,et al.  Charge insertion into hybrid nanoarchitectures: mesoporous manganese oxide coated with ultrathin poly(phenylene oxide) , 2004 .

[34]  John A. Turner,et al.  Sustainable Hydrogen Production , 2004, Science.

[35]  Elsayed K. Elmaghraby,et al.  Characterization of nickel oxide films deposited at different substrate temperatures using spray pyrolysis , 2004 .

[36]  A. Tseung,et al.  Reactive Deposition of Cobalt Electrodes VIII . Effect of Oxygen Reduction on the Deposition of Cobalt in Co(II) Chloride DMF Solution , 1992 .

[37]  D. Corrigan,et al.  Effect of Coprecipitated Metal Ions on the Electrochemistry of Nickel Hydroxide Thin Films: Cyclic Voltammetry in 1M KOH , 1989 .

[38]  D. T. Sawyer,et al.  Effects of media and electrode materials on the electrochemical reduction of dioxygen , 1982 .

[39]  J. Fee,et al.  On the development of a well‐defined source of superoxide ion for studies with biological systems , 1974, FEBS letters.

[40]  Michael E. G. Lyons,et al.  Kinetics and Mechanistic Aspects of the Oxygen Evolution Reaction at Hydrous Iron Oxide Films in Base , 2013 .

[41]  Frank C. Walsh,et al.  Reticulated vitreous carbon as an electrode material , 2004 .