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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Intercalation of hexagonal boron nitride and graphite with lithium by sequential process of ball milling and heat treatment
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Intercalation of hexagonal boron nitride and graphite with lithium by sequential process of ball milling and heat treatment

机译:球磨和热处理顺序工艺与锂嵌入六边形氮化物和石墨

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摘要

Recently, intercalation compounds with various intercalants between hexagonal boron nitride (h-BN) layers have been studied, where lithium BN intercalation compound (Li-BNIC) is one of such compounds successfully synthesized. They are expected to exhibit similar properties to lithium graphite intercalation compounds (Li-GICs) that are known as the anode material for lithium ion batteries. It is difficult, however, to apply Li-BNIC for the batteries due to its returning to an insulator when Li is deintercalated. In this study a Li-BN-graphite ternary system has been focused because it is reported that graphite-like BC2N is a promising material for rechargeable Li batteries. The primary purpose of this study is thus to investigate combined reactivity of BN and graphite with Li through milling and heating processes, and possible intercalation of Li into the matrix: h-BN, graphite or B-C-N. The pieces of lithium metal, h-BN and graphite powders were ball-milled using a vibratory ball-mill machine and heat-treated at 700 degrees C for 2 h under argon atmosphere. The samples were then characterized by X-ray diffractometry, X-ray photoelectron spectroscopy, Li-7 nuclear magnetic resonance and Differential thermal analysis study. Li-GICs were mainly produced by milling, while post-annealing caused their eliminations and instead produced Li-BNICs with small amount of other lithium compounds. In terms of thermal stability, Li-BNIC is more stable than Li-GICs. In a Li-BN-graphite system, an activation energy of Li-BNIC was estimated to be 119.6 kJ/mol, which is higher than reported activation energies for Li-GICs. (C) 2017 Elsevier B.V. All rights reserved.
机译:最近,已经研究了具有六边形氮化硼(H-BN)层之间的各种嵌入剂的嵌入化合物,其中锂BN嵌入化合物(Li-Bnic)是成功合成的这些化合物之一。它们预计将表现出与锂离子电池的阳极材料称为锂石墨嵌入化合物(Li-GIC)的类似性质。然而,由于它在李被拆卸时,由于其返回绝缘体,难以为电池应用Li-Bnic。在这项研究中,据报道,Li-Bn-Graphite三元系重点是据报道,石墨类似的BC2N是可充电LI电池的有希望的材料。因此,本研究的主要目的是通过铣削和加热过程研究BN和石墨的组合反应性,以及Li进入基质的可能插入:H-BN,石墨或B-C-N.使用振动滚珠机机的锂金属,H-BN和石墨粉末是球磨的,并在氩气氛下在700℃下热处理2小时。然后通过X射线衍射法,X射线光电子能谱,Li-7核磁共振和差分热分析研究表征样品。 Li-GICS主要是通过研磨生产的,而退火后果引起其消除,而是用少量其他锂化合物制备Li-Bnics。在热稳定性方面,Li-Bnic比Li-Gics更稳定。在Li-BN-石墨系统中,估计Li-Bnic的激活能量为119.6 kJ / mol,其高于Li-gics的激活能量。 (c)2017年Elsevier B.V.保留所有权利。

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