具有多种能源应用的二维金属烟族纳米片及其纳米杂化材料的研究进展

IF 22.2 Q1 CHEMISTRY, MULTIDISCIPLINARY
Jihyeong Lee , Taehoon Kim , Dong Hoon Sun , Xiaoyan Jin , Seong-Ju Hwang
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引用次数: 0

摘要

二维无机纳米片因其独特的物理化学性质和多种功能而受到广泛关注。无机纳米片的反应性和性能受其成键特性和电子结构的影响。因此,控制它们的化学组成和晶体结构可以增强这些二维纳米片的电化学和催化功能。二维过渡金属烟属化合物纳米片作为一类新兴的无机纳米片,因其具有高导电性、高表面反应性和高稳定性等优异的催化剂和电极性能而受到人们的广泛关注。此外,过渡金属烟属化合物纳米片是一种很有前途的杂交基质,它通过有效地形成界面配位键来增强杂交物种的各种功能。这篇综述强调了过渡金属烟族纳米片在开发高效能量功能材料方面的独特优势,并深入讨论了提高其性能的主要控制因素。根据合成方法和应用领域的不同,本文综述了各种二维过渡金属烟属化合物纳米片及其纳米杂化体,以及各种表征工具。讨论了未来设计和合成高性能金属-烟族化合物-纳米片材料的研究方向,为优化其在许多能源应用中至关重要的功能提供了有价值的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recent advances in two-dimensional metal pnictogenide nanosheets and their nanohybrids with diverse energy applications
Two-dimensional inorganic nanosheets have received prime attention because of their intriguing physicochemical properties and diverse functionalities. The reactivity and properties of inorganic nanosheets are influenced by their bonding characteristics and electronic structures. Consequently, controlling their chemical compositions and crystal structures can enhance the electrochemical and catalytic functionalities of these two-dimensional nanosheets. As an emerging family of inorganic nanosheets, two-dimensional transition metal pnictogenide nanosheets, characterized by highly covalent bonding, have attracted emerging attention owing to their excellent catalyst and electrode performances resulting from their high electrical conductivity, high surface reactivity, and high stability. Additionally, transition metal pnictogenide nanosheets are promising hybridization matrices that enhance various functionalities of hybridized species via the effective formation of interfacial coordinative bonds. This review highlights the exceptional advantages of transition metal pnictogenide nanosheets in developing efficient energy-functional materials, with an in-depth discussion of dominant governing factors for improving their performances. Depending on the synthesis methods and application fields, this review surveys a wide range of two-dimensional transition metal pnictogenide nanosheets and their nanohybrids, along with various characterization tools. Future research directions for designing and synthesizing high-performance metal-pnictogenide-nanosheet-based materials are discussed, providing valuable insights for optimizing their functionalities crucial for many energy applications.
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来源期刊
EnergyChem
EnergyChem Multiple-
CiteScore
40.80
自引率
2.80%
发文量
23
审稿时长
40 days
期刊介绍: EnergyChem, a reputable journal, focuses on publishing high-quality research and review articles within the realm of chemistry, chemical engineering, and materials science with a specific emphasis on energy applications. The priority areas covered by the journal include:Solar energy,Energy harvesting devices,Fuel cells,Hydrogen energy,Bioenergy and biofuels,Batteries,Supercapacitors,Electrocatalysis and photocatalysis,Energy storage and energy conversion,Carbon capture and storage
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