Exploring anodic oxidation reactions in hybrid water electrolysis: special emphasis on substrate choice

IF 4.4 3区 化学 Q2 CHEMISTRY, PHYSICAL
Baghendra Singh , Neetu Verma
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Abstract

Hybrid water electrolysis (HWE) stands out as a promising avenue for simultaneously producing high-value-added chemicals and clean H2 fuel. In HWE, instead of the oxygen evolution reaction (OER) typical in electrochemical water splitting, the anodic oxidation reaction (AOR) takes place, leading to the conversion of organic/inorganic compounds at the anode into valuable chemicals, while the hydrogen evolution reaction (HER) generates H2 at the cathode. The recent literature has seen a surge in papers exploring various AORs utilizing organic and inorganic substrates to supplant the OER, yielding both high-value chemicals and H2. These studies highlight catalyst properties, conversion rates, chemical production, and H2 generation. Additionally, numerous reviews delve into the fundamentals, catalytic design, progress, and applications of catalysts in hybrid water electrolysis. However, a gap remains in identifying the most suitable organic/inorganic substrates for the AOR to replace the OER, considering factors such as potential enhancement, maximum current density achieved, substrate conversion, selectivity, interference from the OER, improved H2 production, energy efficiency, industrial scalability, and high-value chemical formation. This review aims to address this gap by systematically discussing the fundamentals of hybrid water electrolysis and key parameters of the AOR, crucial for replacing the OER. It examines suitable AORs in terms of value-added chemical production, conversion rates, selectivity, H2 generation, potential improvement, and industrial applicability through pioneering examples. Furthermore, it comprehensively explores the merits and drawbacks of hybrid water electrolysis, along with associated challenges and prospects in this domain.

Abstract Image

探索混合水电解中的阳极氧化反应:特别强调基质的选择
混合水电解法(HWE)是一种同时生产高附加值化学品和清洁 H2 燃料的可行方法。在混合水电解中,阳极氧化反应(AOR)取代了电化学水分离中典型的氧进化反应(OER),从而在阳极将有机/无机化合物转化为有价值的化学品,而氢进化反应(HER)则在阴极产生 H2。最近,利用有机和无机底物取代 OER,从而产生高价值化学品和 H2 的各种 AOR 的论文激增。这些研究强调了催化剂的特性、转化率、化学品生产和 H2 生成。此外,许多综述深入探讨了混合水电解催化剂的基本原理、催化设计、进展和应用。然而,在确定最适合 AOR 取代 OER 的有机/无机基质方面仍存在差距,考虑的因素包括电位增强、实现的最大电流密度、基质转换、选择性、OER 干扰、改进的 H2 产量、能效、工业可扩展性和高价值化学品的形成。本综述旨在通过系统地讨论混合水电解的基本原理和对替代 OER 至关重要的 AOR 的关键参数来弥补这一空白。文章从增值化学品生产、转化率、选择性、H2 生成、改进潜力和工业适用性等方面,通过先驱实例对合适的 AOR 进行了研究。此外,报告还全面探讨了混合水电解的优缺点,以及该领域的相关挑战和前景。
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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来源期刊
Catalysis Science & Technology
Catalysis Science & Technology CHEMISTRY, PHYSICAL-
CiteScore
8.70
自引率
6.00%
发文量
587
审稿时长
1.5 months
期刊介绍: A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis. Editor-in-chief: Bert Weckhuysen Impact factor: 5.0 Time to first decision (peer reviewed only): 31 days
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