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通过原位表面敏感X射线散射快速形成金属铋证明的CuBiO薄膜的光降解

Photodegradation of CuBi O Films Evidenced by Fast Formation of Metallic Bi using Operando Surface-sensitive X-ray Scattering.

作者信息

Derelli Davide, Caddeo Francesco, Frank Kilian, Krötzsch Kilian, Ewerhardt Patrick, Krüger Marco, Medicus Sophie, Klemeyer Lars, Skiba Marvin, Ruhmlieb Charlotte, Gutowski Olof, Dippel Ann-Christin, Parak Wolfgang J, Nickel Bert, Koziej Dorota

机构信息

University of Hamburg, Institute for Nanostructure and Solid-State Physics, Center for Hybrid Nanostructures, Hamburg, Germany.

Ludwig-Maximilians-Universität München, Faculty of Physics and Center for NanoScience (CeNS), Munich, Germany.

出版信息

Angew Chem Int Ed Engl. 2023 Oct 23;62(43):e202307948. doi: 10.1002/anie.202307948. Epub 2023 Sep 18.

Abstract

CuBi O has recently emerged as a promising photocathode for photo-electrochemical (PEC) water splitting. However, its fast degradation under operation currently poses a limit to its application. Here, we report a novel method to study operando the semiconductor-electrolyte interface during PEC operation by surface-sensitive high-energy X-ray scattering. We find that a fast decrease in the generated photocurrents correlates directly with the formation of a metallic Bi phase. We further show that the slower formation of metallic Cu, as well as the dissolution of the electrode in contact with the electrolyte, further affect the CuBi O activity and morphology. Our study provides a comprehensive picture of the degradation mechanisms affecting CuBi O electrodes under operation and poses the methodological basis to investigate the photocorrosion processes affecting a wide range of PEC materials.

摘要

CuBiO最近已成为一种用于光电化学(PEC)水分解的有前景的光阴极。然而,其在运行过程中的快速降解目前限制了其应用。在此,我们报告了一种通过表面敏感的高能X射线散射在PEC操作过程中对半导体-电解质界面进行原位研究的新方法。我们发现,产生的光电流的快速下降与金属Bi相的形成直接相关。我们进一步表明,金属Cu形成较慢以及电极与电解质接触时的溶解,进一步影响了CuBiO的活性和形态。我们的研究全面描绘了影响运行中的CuBiO电极的降解机制,并为研究影响广泛PEC材料的光腐蚀过程奠定了方法学基础。

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