Adekoya Gbolahan Joseph, Adekoya Oluwasegun Chijioke, Muloiwa Mpho, Sadiku Emmanuel Rotimi, Kupolati Williams Kehinde, Hamam Yskandar
Institute of NanoEngineering Research (INER) & Department of Chemical, Metallurgical and Materials Engineering, Faculty of Engineering and the Built Environment, Tshwane University of Technology, Pretoria, 0183, South Africa.
Department of Civil Engineering, Faculty of Engineering and the Built Environment, Tshwane University of Technology, Pretoria, 0183, South Africa.
Small. 2024 Oct;20(40):e2403656. doi: 10.1002/smll.202403656. Epub 2024 May 31.
Monolayer boron nanosheet, commonly known as borophene, has garnered significant attention in recent years due to its unique structural, electronic, mechanical, and thermal properties. This review paper provides a comprehensive overview of the advancements in the synthetic strategies, tunable properties, and prospective applications of borophene, specifically focusing on its potential in energy storage devices. The review begins by discussing the various synthesis techniques for borophene, including molecular beam epitaxy (MBE), chemical vapor deposition (CVD), and chemical methods, such as ultrasonic exfoliation and thermal decomposition of boron-containing precursors. The tunable properties of borophene, including its electronic, mechanical, and thermal characteristics, are extensively reviewed, with discussions on its bandgap engineering, plasmonic behavior, and thermal conductivity. Moreover, the potential applications of borophene in energy storage devices, particularly as anode materials in metal-ion batteries and supercapacitors, along with its prospects in other energy storage systems, such as sodium-oxygen batteries, are succinctly, discussed. Hence, this review provides valuable insights into the synthesis, properties, and applications of borophene, offering much-desired guidance for further research and development in this promising area of nanomaterials science.
单层硼纳米片,通常称为硼烯,近年来因其独特的结构、电子、机械和热性能而备受关注。这篇综述文章全面概述了硼烯在合成策略、可调谐性能和潜在应用方面的进展,特别关注其在储能器件中的潜力。综述首先讨论了硼烯的各种合成技术,包括分子束外延(MBE)、化学气相沉积(CVD)以及化学方法,如超声剥离和含硼前驱体的热分解。文中广泛综述了硼烯的可调谐性能,包括其电子、机械和热特性,并讨论了其带隙工程、等离子体行为和热导率。此外,还简要讨论了硼烯在储能器件中的潜在应用,特别是作为金属离子电池和超级电容器的阳极材料,以及其在其他储能系统中的前景,如钠氧电池。因此,本综述为硼烯的合成、性能和应用提供了有价值的见解,为纳米材料科学这一有前景领域的进一步研究和开发提供了迫切需要的指导。