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- W2891982331 abstract "Abstract Direct electrochemical production of hydrogen peroxide (H 2 O 2 ) through two‐electron oxygen electrochemistry, for example, the oxygen reduction in fuel cells or water oxidation in water electrolyzers, could provide an attractive alternative to locally produce this chemical on demand. The efficiency of these processes depends greatly on the availability of cost‐effective catalysts with high selectivity, activity, and stability. In recent years, various novel nanostructured materials have been reported to selectively produce H 2 O 2 . Through combined experimental and theoretical approaches, underlying mechanisms in the electrochemical synthesis of H 2 O 2 via oxygen electrochemistry have been unveiled. Considering the remarkable progress in this area, the authors summarize recent developments regarding the direct production of H 2 O 2 through two‐electron electrochemical oxygen reactions. The fundamental aspects of electrochemical oxygen reactions are first introduced. Various types of catalysts that can effectively produce H 2 O 2 via two‐electron oxygen electrochemistry are then presented. In parallel, the unique structure‐, component‐, and composition‐dependent electrochemical performance together with the underlying catalytic mechanisms are discussed. Finally, a brief conclusion about the recent progress achieved in electrochemical generation of H 2 O 2 and an outlook on future research challenges are given." @default.
- W2891982331 created "2018-09-27" @default.
- W2891982331 creator A5001737088 @default.
- W2891982331 creator A5007145347 @default.
- W2891982331 creator A5034638742 @default.
- W2891982331 creator A5051717124 @default.
- W2891982331 creator A5052116879 @default.
- W2891982331 creator A5057145033 @default.
- W2891982331 creator A5072234270 @default.
- W2891982331 creator A5076440313 @default.
- W2891982331 date "2018-09-21" @default.
- W2891982331 modified "2023-10-16" @default.
- W2891982331 title "Selective Electrochemical H<sub>2</sub>O<sub>2</sub> Production through Two‐Electron Oxygen Electrochemistry" @default.
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