Department of Chemical and Biomolecular Engineering, Vanderbilt University, Nashville, TN, 37212, USA.
Department of Mechanical Engineering, Vanderbilt University, Nashville, TN, 37212, USA.
Adv Mater. 2023 Feb;35(6):e2207374. doi: 10.1002/adma.202207374. Epub 2022 Dec 16.
Hexagonal boron nitride (h-BN) is a layered inorganic synthetic crystal exhibiting high temperature stability and high thermal conductivity. As a ceramic material it has been widely used for thermal management, heat shielding, lubrication, and as a filler material for structural composites. Recent scientific advances in isolating atomically thin monolayers from layered van der Waals crystals to study their unique properties has propelled research interest in mono/few layered h-BN as a wide bandgap insulating support for nanoscale electronics, tunnel barriers, communications, neutron detectors, optics, sensing, novel separations, quantum emission from defects, among others. Realizing these futuristic applications hinges on scalable cost-effective high-quality h-BN synthesis. Here, the authors review scalable approaches of high-quality mono/multilayer h-BN synthesis, discuss the challenges and opportunities for each method, and contextualize their relevance to emerging applications. Maintaining a stoichiometric balance B:N = 1 as the atoms incorporate into the growing layered crystal and maintaining stacking order between layers during multi-layer synthesis emerge as some of the main challenges for h-BN synthesis and the development of processes to address these aspects can inform and guide the synthesis of other layered materials with more than one constituent element. Finally, the authors contextualize h-BN synthesis efforts along with quality requirements for emerging applications via a technological roadmap.
六方氮化硼(h-BN)是一种具有高热稳定性和高热导率的层状无机合成晶体。作为一种陶瓷材料,它已被广泛用于热管理、热屏蔽、润滑以及结构复合材料的填充材料。最近,从层状范德华晶体中分离出原子级薄的单层以研究其独特性质的科学进展,推动了人们对单层/少层 h-BN 的研究兴趣,将其作为纳米电子学、隧道势垒、通信、中子探测器、光学、传感、新型分离、缺陷量子发射等方面的宽带隙绝缘支撑材料。实现这些未来的应用取决于可扩展的、具有成本效益的高质量 h-BN 合成。在这里,作者综述了高质量单层/多层 h-BN 合成的可扩展方法,讨论了每种方法的挑战和机遇,并将其与新兴应用相关联。在多层合成过程中,保持原子进入生长层状晶体时的化学计量比平衡 B:N = 1,以及保持层与层之间的堆叠顺序,是 h-BN 合成的主要挑战之一。解决这些方面的过程的发展可以为具有不止一种组成元素的其他层状材料的合成提供信息和指导。最后,作者通过技术路线图,将 h-BN 合成工作以及新兴应用的质量要求联系起来。