2D semiconductor nanosheets for solar photocatalysis

EcoEnergy Pub Date : 2023-12-22 DOI:10.1002/ece2.16
Meng Cai, Yixin Wei, Yukun Li, Xin Li, Shaobin Wang, Guosheng Shao, Peng Zhang
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Abstract

In the advancing world of graphene, highly anisotropic 2D semiconductor nanosheets, notable for their nanometer‐scale thickness, have emerged as a leading innovation, displaying immense potential in the exploration of renewable and clean energy production. These have garnered significant attention from researchers. The nanosheets are marked by their extraordinary electronic, optical, and chemical attributes, positioning them as attractive foundational components for heterogeneous photocatalysts. This review diligently summarizes both the seminal work and ongoing developments pertaining to 2D semiconductor nanosheets and their application to solar energy within the context of heterogeneous photocatalysis. We begin by detailing the distinctive properties of 2D semiconductor nanosheets, concentrating on their pivotal roles in augmenting photocatalytic efficiency, and explaining the intrinsic mechanisms that govern the migration rate of photogenerated carriers on the material's surface. Subsequently, we delineate the methods employed to synthesize typical 2D semiconductor nanosheets. In alignment with the overarching objective of expanding light absorption capacity and accelerating charge transfer, we also examine the current research on the hybridization techniques involving 2D materials of varied dimensions, as well as their deployment in diverse photocatalytic applications. We conclude by identifying promising avenues and potential challenges that await further exploration in this burgeoning field.
用于太阳能光催化的二维半导体纳米片
在石墨烯不断进步的世界中,高度各向异性的二维半导体纳米片以其纳米级的厚度而引人注目,已成为一种领先的创新技术,在探索可再生能源和清洁能源生产方面显示出巨大的潜力。这引起了研究人员的极大关注。这些纳米片具有非凡的电子、光学和化学属性,使其成为异质光催化剂中极具吸引力的基础成分。本综述认真总结了与二维半导体纳米片及其在异相光催化背景下的太阳能应用有关的开创性工作和持续发展。我们首先详细介绍了二维半导体纳米片的独特性质,集中阐述了它们在提高光催化效率方面的关键作用,并解释了支配光生载流子在材料表面迁移率的内在机制。随后,我们介绍了合成典型二维半导体纳米片的方法。为了与扩大光吸收能力和加速电荷转移的总体目标保持一致,我们还考察了当前涉及不同尺寸二维材料的杂化技术研究,以及它们在各种光催化应用中的部署情况。最后,我们确定了这一新兴领域有待进一步探索的前景广阔的途径和潜在挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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