Photoelectrochemical Energy Conversion over 2D Materials

IF 2.3 Photochem Pub Date : 2022-03-30 DOI:10.3390/photochem2020020
A. Raza, Xinyu Zhang, Sarfraz Ali, Changhai Cao, Arslan Ahmed Rafi, Gao Li
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引用次数: 15

Abstract

The solar motivated photoelectrochemical (PEC), used in water splitting systems, shows superior talent in converting solar energy in the form of cleaning and in sustaining a chemical energy evolution. PEC systems present by integrating a photoelectrode, which involves light-harvesting to absorb solar energy, thereby introducing an interlayer for the transformation of photogenerated electrons and holes, along with a co-catalyst to trigger oxidation and reduce the chemical reactions. In this review, we describe a variety of two-dimensional (2D) layered photoanodes and photocathodes, such as graphitic carbon nitrides, transition metal dichalcogenides, layered double hydroxides, MXenes, and co-catalysts for the assembly of combined photoelectrodes belonging to oxygen evolution and/or hydrogen evolution chemical reactions. The basic principles of PEC water splitting associated with physicochemical possessions relating to photoelectrodes unified with catalytic chemical reactions have been investigated. Additionally, the mechanisms attributing to a relationship with 2D photoelectrodes have been incorporated as a supplementary discussion. The improvement strategies, which include the construction of heterostructures, surface functionalization, and formations of heterojunctions, have also been discussed. The issues and challenges relevant to the field have been acknowledged for facilitating future research, indicating optimized conversion activity corresponding to PEC water splitting.
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二维材料上的光电化学能量转换
用于水分解系统的太阳能光电化学(PEC)在以清洁形式转换太阳能和维持化学能进化方面表现出卓越的天赋。PEC系统通过集成光电极而存在,该光电极涉及光收集以吸收太阳能,从而引入用于转换光生电子和空穴的夹层,以及引发氧化和减少化学反应的助催化剂。在这篇综述中,我们描述了各种二维(2D)层状光阳极和光电阴极,如石墨碳氮化物、过渡金属二硫属化物、层状双氢氧化物、MXenes和用于组装属于析氧和/或析氢化学反应的组合光电极的助催化剂。研究了PEC水分解的基本原理,这些原理与光电与催化化学反应相结合的物理化学性质有关。此外,将归因于与2D光电极的关系的机制作为补充讨论。还讨论了改进策略,包括异质结构的构建、表面功能化和异质结的形成。与该领域相关的问题和挑战已被公认为有助于未来的研究,表明与PEC水分解相对应的最佳转化活性。
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