Grain boundary engineering: An emerging pathway toward efficient electrocatalysis

IF 22.7 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Infomat Pub Date : 2024-07-16 DOI:10.1002/inf2.12608
Xiaomin Xu, Yijun Zhong, Magdalena Wajrak, Tejas Bhatelia, San Ping Jiang, Zongping Shao
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Abstract

Electrochemical transformation processes involving carbon, hydrogen, oxygen, nitrogen, and small-molecule chemistries represent a promising means to store renewable energy sources in the form of chemical energy. However, their widespread deployment is hindered by a lack of efficient, selective, durable, and affordable electrocatalysts. Recently, grain boundary (GB) engineering as one category of defect engineering, has emerged as a viable and powerful pathway to achieve improved electrocatalytic performances. This review presents a timely and comprehensive overview of recent advances in GB engineering for efficient electrocatalysis. The beneficial effects of introducing GBs into electrocatalysts are discussed, followed by an overview of the synthesis and characterization of GB-enriched electrocatalysts. Importantly, the latest developments in leveraging GB engineering for enhanced electrocatalysis are thoroughly examined, focusing on the electrochemical utilization cycles of carbon, hydrogen, oxygen, and nitrogen. Future research directions are proposed to further advance the understanding and application of GB engineering for improved electrocatalysis.

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晶界工程:实现高效电催化的新兴途径
涉及碳、氢、氧、氮和小分子化学的电化学转化过程是以化学能形式储存可再生能源的一种很有前途的方法。然而,由于缺乏高效、选择性强、耐用且价格合理的电催化剂,这些技术的广泛应用受到了阻碍。最近,作为缺陷工程的一种,晶界(GB)工程已成为提高电催化性能的一种可行而强大的途径。本综述及时、全面地概述了用于高效电催化的 GB 工程的最新进展。首先讨论了在电催化剂中引入 GB 的有利影响,然后概述了富集 GB 的电催化剂的合成和表征。重要的是,该研究深入探讨了利用 GB 工程增强电催化的最新进展,重点关注碳、氢、氧和氮的电化学利用循环。此外,还提出了未来的研究方向,以进一步推动对国标工程在改进电催化方面的理解和应用。
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来源期刊
Infomat
Infomat MATERIALS SCIENCE, MULTIDISCIPLINARY-
CiteScore
37.70
自引率
3.10%
发文量
111
审稿时长
8 weeks
期刊介绍: InfoMat, an interdisciplinary and open-access journal, caters to the growing scientific interest in novel materials with unique electrical, optical, and magnetic properties, focusing on their applications in the rapid advancement of information technology. The journal serves as a high-quality platform for researchers across diverse scientific areas to share their findings, critical opinions, and foster collaboration between the materials science and information technology communities.
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