Energy and mass flow in photocatalytic water splitting by coupling photothermal effect

Shujian Wang, Yitao Si, Kejian Lu, Feng Liu, Biao Wang, Shidong Zhao, Yi Wang, Shiyue Zhang, Youjun Lu, Naixu Li, Maochang Liu
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引用次数: 0

Abstract

Solar photocatalytic water splitting for hydrogen production represents an ideal approach to address the current energy and environmental challenges, while also achieving “carbon peak and carbon neutrality” goals. The incorporation of photothermal effect into photocatalysis enables dual utilization of both light and heat energies, resulting in improved solar-to-hydrogen efficiency. In this review, we first discussed the behavior of energy flow and mass flow, and the characteristics of photogenerated carrier throughout the photocatalytic water splitting process, with particular focus on the behaviors induced by photothermal effect. Subsequently, we elaborate on strategies for designing high-efficiency photothermal catalytic systems and novel photothermal–photocatalytic integrated systems based upon concentrating-photothermal coupling effects. We then illustrate the development and large-scale demonstrations that utilize concentrated solar irradiation. Finally, we outline the challenges and highlight the future research directions of photothermal catalysis toward hydrogen production from water. This review aims to provide fundamental references and principal strategies for efficient utilization of solar energy in photothermal catalytic processes.
光热效应耦合光催化水分离中的能量流和质量流
太阳能光催化水分离制氢是应对当前能源和环境挑战的理想方法,同时还能实现 "碳峰值和碳中和 "目标。将光热效应融入光催化技术可实现光能和热能的双重利用,从而提高太阳能制氢的效率。在这篇综述中,我们首先讨论了整个光催化水分离过程中的能量流和质量流的行为,以及光生载流子的特性,尤其侧重于光热效应引起的行为。随后,我们阐述了基于聚光-光热耦合效应的高效光热催化系统和新型光热-光催化集成系统的设计策略。然后,我们说明了利用太阳聚光照射进行开发和大规模示范的情况。最后,我们概述了光热催化从水中制氢所面临的挑战,并强调了未来的研究方向。本综述旨在为光热催化过程中有效利用太阳能提供基本参考和主要策略。
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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