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热效应对光电化学水分解制氢太阳能到氢能效率的影响。

Thermal Effect on Photoelectrochemical Water Splitting Toward Highly Solar to Hydrogen Efficiency.

机构信息

Department of Energy Science & Engineering, Daegu Gyeongbuk Institute of Science and Technology (DGIST), 333 Techno Jungang-daero, Hyeonpung-eup, Dalseong-gun, Daegu, 42988 (Republic of, Korea.

Department of Chemical Engineering, Dankook University (DKU), Yongin-si, 16890 (Republic of, Korea.

出版信息

ChemSusChem. 2023 Jun 9;16(11):e202202017. doi: 10.1002/cssc.202202017. Epub 2023 Apr 5.

Abstract

Photoelectrochemical (PEC) hydrogen production is an emerging technology that uses renewable solar light aimed to establish a sustainable carbon-neutral society. The barriers to commercialization are low efficiency and high cost. To date, researchers have focused on materials and systems. However, recent studies have been conducted to utilize thermal effects in PEC hydrogen production. This Review provides a fresh perspective to utilize the thermal effects for PEC performance enhancement while delineating the underlying principles and equations associated with efficiency. The fundamentals of the thermal effect on the PEC system are summarized from various perspectives: kinetics, thermodynamics, and empirical equations. Based on this, materials are classified as plasmonic metals, quantum dot-based semiconductors, and photothermal organic materials, which have an inherent response to photothermal irradiation. Finally, the economic viability and challenges of these strategies for PEC are explained, which can pave the way for the future progress in the field.

摘要

光电化学(PEC)制氢是一项新兴技术,利用可再生太阳能旨在建立可持续的碳中和社会。其面临的商业化障碍是低效率和高成本。迄今为止,研究人员一直专注于材料和系统。然而,最近的研究已经开始利用 PEC 制氢中的热效应。本综述提供了一个新的视角,即在阐述与效率相关的基本原理和方程的同时,利用热效应对 PEC 性能进行增强。从动力学、热力学和经验方程等多个角度总结了热效应对 PEC 系统的影响。在此基础上,将材料分为等离子体金属、基于量子点的半导体和光热有机材料,这些材料对光热辐照有固有响应。最后,解释了这些策略用于 PEC 的经济可行性和挑战,这为该领域的未来发展铺平了道路。

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