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石墨烯在用于阳光驱动水分解的光电极设计中的作用面临的挑战与前景。

Challenges and prospects about the graphene role in the design of photoelectrodes for sunlight-driven water splitting.

作者信息

Carminati Saulo A, Rodríguez-Gutiérrez Ingrid, de Morais Andreia, da Silva Bruno L, Melo Mauricio A, Souza Flavio L, Nogueira Ana F

机构信息

Institute of Chemistry, University of Campinas (UNICAMP) PO Box 6154 Campinas São Paulo 13083-970 Brazil

Centro de Ciências Naturais e Humanas, Universidade Federal do ABC (UFABC) Santo André São Paulo 09210-580 Brazil.

出版信息

RSC Adv. 2021 Apr 16;11(24):14374-14398. doi: 10.1039/d0ra10176a. eCollection 2021 Apr 15.

Abstract

Graphene and its derivatives have emerged as potential materials for several technological applications including sunlight-driven water splitting reactions. This review critically addresses the latest achievements concerning the use of graphene as a player in the design of hybrid-photoelectrodes for photoelectrochemical cells. Insights about the charge carrier dynamics of graphene-based photocatalysts which include metal oxides and non-metal oxide semiconductors are also discussed. The concepts underpinning the continued progress in the field of graphene/photoelectrodes, including different graphene structures, architecture as well as the possible mechanisms for hydrogen and oxygen reactions are also presented. Despite several reports having demonstrated the potential of graphene-based photocatalysts, the achieved performance remains far from the targeted benchmark efficiency for commercial application. This review also highlights the challenges and opportunities related to graphene application in photoelectrochemical cells for future directions in the field.

摘要

石墨烯及其衍生物已成为包括阳光驱动水分解反应在内的多种技术应用的潜在材料。本综述批判性地阐述了有关石墨烯在光电化学电池混合光电极设计中应用的最新成果。还讨论了包括金属氧化物和非金属氧化物半导体在内的基于石墨烯的光催化剂的电荷载流子动力学见解。文中还介绍了石墨烯/光电极领域持续进步所依据的概念,包括不同的石墨烯结构、架构以及氢和氧反应的可能机制。尽管有多项报告证明了基于石墨烯的光催化剂的潜力,但所实现的性能仍远低于商业应用的目标基准效率。本综述还强调了石墨烯在光电化学电池中应用相关的挑战和机遇,为该领域的未来发展指明方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ac7e/8698315/b01dd3e679f6/d0ra10176a-f1.jpg

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