Turbostratic Boron–Carbon–Nitrogen and Boron Nitride by Flash Joule Heating

材料科学 氮化硼 碳纤维 纳米复合材料 化学工程 剥脱关节 氮化物 焦耳加热 纳米技术 石墨烯 冶金 复合材料 图层(电子) 有机化学 化学 复合数 工程类
作者
Weiyin Chen,John T. Li,Chang Ge,Zhe Yuan,Wala A. Algozeeb,Paul A. Advincula,Guanhui Gao,Jinhang Chen,Kexin Ling,Chi Hun Choi,Emily A. McHugh,Kevin M. Wyss,Duy Xuan Luong,Zhe Wang,Yimo Han,James M. Tour
出处
期刊:Advanced Materials [Wiley]
卷期号:34 (33): e2202666-e2202666 被引量:34
标识
DOI:10.1002/adma.202202666
摘要

Abstract Turbostratic layers in 2D materials have an interlayer misalignment. The lack of alignment expands the intrinsic interlayer distances and weakens the optical and electronic interactions between adjacent layers. This introduces properties distinct from those structures with well‐aligned lattices and strong coupling interactions. However, direct and rapid synthesis of turbostratic materials remains a challenge owing to their thermodynamically metastable properties. Here, a flash Joule heating (FJH) method to achieve bulk synthesis of boron–carbon–nitrogen ternary compounds with turbostratic structures by a kinetically controlled ultrafast cooling process that takes place within milliseconds (10 3 to 10 4 K s −1 ) is reported. Theoretical calculations support the existence of turbostratic structures and provide estimates of the energy barriers with respect to conversion into the corresponding well‐aligned counterparts. When using non‐carbon conductive additives, a direct synthesis of boron nitride is possible. The turbostratic nature facilitates mechanical exfoliation and more stable dispersions. Accordingly, the addition of flash products to a poly(vinyl alcohol) nanocomposite film coating a copper surface greatly improves the copper's resistance to corrosion in 0.5 m sulfuric acid or 3.5 wt% saline solution. FJH allows the use of bulk materials as reactants and provides a rapid approach to large quantities of the hitherto hard‐to‐access turbostratic materials.
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