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熔盐中碳化物的电解合成与二氧化碳捕获。

Electrolysis Synthesis of Carbides and Carbon Dioxide Capture in Molten Salts.

机构信息

School of Material Science and Engineering, Zhengzhou University, Science Road 100, Zhengzhou, Henan, 450001, P. R. China.

Zhongyuan Critical Metals Laboratory, Zhengzhou University, Science Road 100, Zhengzhou, Henan, 450001, P. R. China.

出版信息

Small. 2023 Jun;19(23):e2207863. doi: 10.1002/smll.202207863. Epub 2023 Mar 8.

Abstract

The application of carbides in catalysis, batteries, aerospace fields, etc. has been continuously expanded and deepened, which is attributed to the diversified physicochemical properties of carbides via a tune-up of their morphology, composition, and microstructure. The emergence of MAX phases and high entropy carbides with unparalleled application potential undoubtedly further stimulates the research upsurge of carbides. The traditional pyrometallurgical or hydrometallurgical synthesis of carbides inevitably faces the shortcomings of complex process, unacceptable energy consumption, extreme environmental pollution, and beyond. The molten salt electrolysis synthesis method with the superiorities of straightforward route, high efficiency, and environmental friendliness has demonstrated its validity in the synthesis of various carbides, which naturally initiates more research. In particular, the process can achieve CO capture while synthesizing carbides based on the excellent CO capture capability of some molten salts, which is of great significance for carbon neutralization. In this paper, the synthesis mechanism of carbide by molten salt electrolysis, the process of CO capture and carbides conversion, the latest research progress in the synthesis of binary, ternary, multi-component, and composite carbides are reviewed. Finally, the challenges, development perspectives, and research directions of electrolysis synthesis of carbides in molten salts are featured.

摘要

碳化物在催化、电池、航空航天等领域的应用不断扩大和深化,这归因于通过调整其形态、组成和微观结构,使碳化物具有多样化的物理化学性质。具有无与伦比应用潜力的 MAX 相和高熵碳化物的出现,无疑进一步激发了碳化物的研究热潮。传统的碳化物高温冶金或湿法冶金合成不可避免地面临工艺复杂、能耗不可接受、环境污染极端以及超出等缺点。具有路线直接、高效、环保等优势的熔盐电解合成方法在各种碳化物的合成中已经证明了其有效性,这自然引发了更多的研究。特别是,该过程可以在合成碳化物的同时实现 CO 捕集,这基于一些熔盐具有优异的 CO 捕集能力,对于实现碳中和具有重要意义。本文综述了熔盐电解合成碳化物的合成机制、CO 捕集和碳化物转化过程、二元、三元、多组分和复合碳化物合成的最新研究进展。最后,介绍了熔盐中碳化物电解合成的挑战、发展前景和研究方向。

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