电化学合成的进展:从水电解向双增值产品扩展

IF 42.9 Q1 ELECTROCHEMISTRY
Genxiang Wang , Ao Chen , Yao Chen , Fen Qiao , Junfeng Wang , Nianjun Yang , Hao Zhang , Zhenhai Wen
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引用次数: 0

摘要

电化学技术在化学和燃料合成中的应用提供了一种比传统工业实践更环保的方法。然而,水溶液中的电化学合成通常涉及阳极缓慢的析氧反应(OER),产生的产物在经济上不太可行,导致能源利用效率低下。这一挑战促使人们在电解系统中用快速增值氧化反应(OER替代品)取代OER进行了广泛的研究。本文综述了在水溶液中结合OER替代反应和除析氢反应外的还原反应合成双增值产品的耦合电化学体系的最新研究进展。在提供总体概述之后,我们首先介绍两个关键因素:(i)电解装置和(ii)用于机理研究的先进表征技术。然后将重点转移到迄今为止开发的催化剂及其相应的催化机制,以及这些混合电解系统的电化学性能。最后,我们概述和讨论了这些集成电化学系统面临的挑战和前景,为未来的研究方向和应用提供了见解。我们设想这篇综述将为双增值产品的电解系统提供一个全景,从而促进零碳排放绿色合成的发展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advancements in electrochemical synthesis: Expanding from water electrolysis to dual-value-added products

Advancements in electrochemical synthesis: Expanding from water electrolysis to dual-value-added products
The application of electrochemical technologies for chemical and fuel synthesis offers a significantly more eco-friendly method than traditional industrial practice. However, electrochemical synthesis in aqueous solutions often involves a sluggish oxygen evolution reaction (OER) at the anode, yielding products that are less economically viable and leading to inefficient energy use. This challenge has prompted extensive research into replacing the OER with fast, value-added oxidation reactions (OER alternatives) in electrolysis systems. In this review, we summarize the latest research progress in coupled electrochemical systems that integrate OER alternatives with reduction reactions, beyond hydrogen evolution reactions, in aqueous solutions to synthesize dual value-added products. After providing a general overview, we start by introducing two key factors: (i) electrolytic devices and (ii) advanced characterization techniques for mechanism investigation. The focus then shifts to catalysts developed so far and their corresponding catalytic mechanisms, and to the electrochemical performance of these hybrid electrolysis systems. Finally, we outline and discuss the challenges and prospects for these integrated electrochemical systems to offer insights into future research directions and applications. We envision that this review will provide a panorama of electrolysis systems for dual value-added products, thereby fostering the development of green synthesis with zero carbon emissions.
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CiteScore
33.70
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