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原位光电化学催化剂同步加速器研究

Operando Photo-Electrochemical Catalysts Synchrotron Studies.

作者信息

Soldatov Mikhail A, Medvedev Pavel V, Roldugin Victor, Novomlinskiy Ivan N, Pankin Ilia, Su Hui, Liu Qinghua, Soldatov Alexander V

机构信息

The Smart Materials Research Institute, Southern Federal University, 178/24 Sladkova, 344090 Rostov-on-Don, Russia.

Department of Chemistry, Southern Federal University, 7 Zorge, 344090 Rostov-on-Don, Russia.

出版信息

Nanomaterials (Basel). 2022 Mar 2;12(5):839. doi: 10.3390/nano12050839.

Abstract

The attempts to develop efficient methods of solar energy conversion into chemical fuel are ongoing amid climate changes associated with global warming. Photo-electrocatalytic (PEC) water splitting and CO reduction reactions show high potential to tackle this challenge. However, the development of economically feasible solutions of PEC solar energy conversion requires novel efficient and stable earth-abundant nanostructured materials. The latter are hardly available without detailed understanding of the local atomic and electronic structure dynamics and mechanisms of the processes occurring during chemical reactions on the catalyst-electrolyte interface. This review considers recent efforts to study photo-electrocatalytic reactions using in situ and operando synchrotron spectroscopies. Particular attention is paid to the operando reaction mechanisms, which were established using X-ray Absorption (XAS) and X-ray Photoelectron (XPS) Spectroscopies. Operando cells that are needed to perform such experiments on synchrotron are covered. Classical and modern theoretical approaches to extract structural information from X-ray Absorption Near-Edge Structure (XANES) spectra are discussed.

摘要

在与全球变暖相关的气候变化背景下,人们一直在尝试开发将太阳能高效转化为化学燃料的方法。光电催化(PEC)水分解和CO还原反应在应对这一挑战方面显示出巨大潜力。然而,要开发经济可行的PEC太阳能转换解决方案,需要新型高效且稳定的储量丰富的纳米结构材料。如果不详细了解催化剂-电解质界面化学反应过程中的局部原子和电子结构动力学及机制,就很难获得后者。本综述考虑了近期利用原位和操作同步辐射光谱研究光电催化反应的努力。特别关注了利用X射线吸收(XAS)和X射线光电子能谱(XPS)建立的操作反应机制。介绍了在同步加速器上进行此类实验所需的操作电池。讨论了从X射线吸收近边结构(XANES)光谱中提取结构信息的经典和现代理论方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f792/8912469/acad5c71b982/nanomaterials-12-00839-g001.jpg

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