硼菲:塑造纳米技术和材料科学未来的二维奇迹

IF 9.9 2区 材料科学 Q1 Engineering
Raghvendra Kumar Mishra , Jayati Sarkar , Kartikey Verma , Iva Chianella , Saurav Goel , Hamed Yazdani Nezhad
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引用次数: 0

摘要

二维(2D)材料由于其精确定义的性质和广泛的应用而引起了相当大的研究兴趣。在这个领域,硼罗芬——一种排列成蜂窝状晶格的硼原子单原子片——已经成为一个很有希望的候选者。虽然理论上预测硼罗芬具有独特的结构、光学和电子特性,但2015年在金属衬底上首次展示了晶体硼罗芬片的实验合成,这是一个至关重要的里程碑。从那时起,研究工作集中在控制半导体硼罗芬多晶的合成和探索其新的物理特性。本文旨在探讨二维材料,特别是硼苯在电池、超级电容器、燃料电池等各个技术领域的潜力。分析强调了对合成技术的细致审查,因为它们在实现波罗芬的性质方面具有根本的重要性。特别地,高载流子迁移率,可调谐的带隙,以及波罗芬的特殊导热性被强调。通过对硼罗芬在推进材料科学和技术方面的意义进行全面的展望,本综述有助于塑造二维材料研究的景观。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Borophene: A 2D wonder shaping the future of nanotechnology and materials science

Borophene: A 2D wonder shaping the future of nanotechnology and materials science
Two-dimensional (2D) materials have attracted considerable research interest due to their precisely defined properties and versatile applications. In this realm, borophene - a single atomic sheet of boron atoms arranged in a honeycomb lattice - has emerged as a promising candidate. While borophenes were theoretically predicted to have unique structural, optical, and electronic properties, the experimental synthesis of crystalline borophene sheets was first demonstrated on metal substrates in 2015, marking a crucial milestone. Since then, research efforts have focused on controlling the synthesis of semiconducting borophene polymorphs and exploring their novel physical characteristics. This review aims to explore the potential of 2D materials, specifically borophene, in various technological fields such as batteries, supercapacitors, fuel cells, and more. The analysis emphasises meticulous scrutiny of synthesis techniques due to their fundamental importance in realising borophene's properties. Specifically, the high carrier mobilities, tuneable bandgaps, and exceptional thermal conductivity of borophene are highlighted. By providing a comprehensive outlook on the significance of borophene in advancing materials science and technologies, this review contributes to shaping the landscape of 2D material research.
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来源期刊
Nano Materials Science
Nano Materials Science Engineering-Mechanics of Materials
CiteScore
20.90
自引率
3.00%
发文量
294
审稿时长
9 weeks
期刊介绍: Nano Materials Science (NMS) is an international and interdisciplinary, open access, scholarly journal. NMS publishes peer-reviewed original articles and reviews on nanoscale material science and nanometer devices, with topics encompassing preparation and processing; high-throughput characterization; material performance evaluation and application of material characteristics such as the microstructure and properties of one-dimensional, two-dimensional, and three-dimensional nanostructured and nanofunctional materials; design, preparation, and processing techniques; and performance evaluation technology and nanometer device applications.
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