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用于节能制氢的耦合水电解的最新进展与展望

Recent Advances and Perspectives on Coupled Water Electrolysis for Energy-Saving Hydrogen Production.

作者信息

Li Jiachen, Ma Yuqiang, Mu Xiaogang, Wang Xuanjun, Li Yang, Ma Haixia, Guo Zhengxiao

机构信息

Department of Chemistry, The University of Hong Kong, Hong Kong, 999077, China.

Xi'an Key Laboratory of Special Energy Materials, School of Chemical Engineering, Northwest University, Xi'an, 710069, China.

出版信息

Adv Sci (Weinh). 2025 Feb;12(7):e2411964. doi: 10.1002/advs.202411964. Epub 2025 Jan 7.

Abstract

Overall water splitting (OWS) to produce hydrogen has attracted large attention in recent years due to its ecological-friendliness and sustainability. However, the efficiency of OWS has been forced by the sluggish kinetics of the four-electron oxygen evolution reaction (OER). The replacement of OER by alternative electrooxidation of small molecules with more thermodynamically favorable potentials may fundamentally break the limitation and achieve hydrogen production with low energy consumption, which may also be accompanied by the production of more value-added chemicals than oxygen or by electrochemical degradation of pollutants. This review critically assesses the latest discoveries in the coupled electrooxidation of various small molecules with OWS, including alcohols, aldehydes, amides, urea, hydrazine, etc. Emphasis is placed on the corresponding electrocatalyst design and related reaction mechanisms (e.g., dual hydrogenation and N-N bond breaking of hydrazine and C═N bond regulation in urea splitting to inhibit hazardous NCO and NO productions, etc.), along with emerging alternative electrooxidation reactions (electrooxidation of tetrazoles, furazans, iodide, quinolines, ascorbic acid, sterol, trimethylamine, etc.). Some new decoupled electrolysis and self-powered systems are also discussed in detail. Finally, the potential challenges and prospects of coupled water electrolysis systems are highlighted to aid future research directions.

摘要

近年来,整体水分解(OWS)制氢因其生态友好性和可持续性而备受关注。然而,四电子析氧反应(OER)的缓慢动力学限制了OWS的效率。用具有更有利热力学电位的小分子替代OER进行替代电氧化,可能从根本上突破这一限制,实现低能耗制氢,同时还可能伴随产生比氧气更具附加值的化学品,或实现污染物的电化学降解。本文综述了各种小分子与OWS耦合电氧化的最新发现,包括醇类、醛类、酰胺类、尿素、肼等。重点介绍了相应的电催化剂设计和相关反应机理(如肼的双氢化和N-N键断裂以及尿素分解中C═N键调控以抑制有害的NCO和NO生成等),以及新兴的替代电氧化反应(四唑、呋咱、碘化物、喹啉、抗坏血酸、甾醇、三甲胺等的电氧化)。还详细讨论了一些新型的解耦电解和自供电系统。最后,强调了耦合水电解系统面临的潜在挑战和前景,以指导未来的研究方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3988/11831450/4aef1cfcfa37/ADVS-12-2411964-g015.jpg

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