Essential Properties of Li/Li+ Graphite-Intercalation Compounds

Shih‐Yang Lin, Wei-Bang Li, Ngoc Thanh Thuy Tran, Wen-Dung Hsu, Hsin-yi Liu, F. Ming
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引用次数: 1

Abstract

The essential properties of graphite-based 3D systems are thoroughly investigated by the first-principles method. Such materials cover a simple hexagonal graphite, a Bernal graphite, and the stage-1 to stage-4 Li/Li$^+$ graphite intercalation compounds. The delicate calculations and the detailed analyses are done for their optimal stacking configurations, bong lengths, interlayer distances, free electron $\&$ hole densities, Fermi levels, transferred charges in chemical bondings, atom- or ion-dominated energy bands, spatial charge distributions and the significant variations after intercalation, Li-/Li$^+$- $\&$ C-orbital-decomposed DOSs. The above-mentioned physical quantities are sufficient in determining the critical orbital hybridizations responsible for the unusual fundamental properties. How to dramatically alter the low-lying electronic structures by modulating the quest-atom/quest-ion concentration is one of focuses, e.g., the drastic changes on the Fermi level, band widths, and number of energy bands. The theoretical predictions on the stage-n-dependent band structures could be examined by the high-resolution angle-resolved photoemission spectroscopy (ARPES). Most important, the low-energy DOSs near the Fermi might provide the reliable data for estimating the free carrier density due to the interlayer atomic interactions or the quest-atom/quest-ion intercalation. The van Hove singularities, which mainly arise from the critical points in energy-wave-vector space, could be directly examined by the experimental measurements of scanning tunneling spectroscopy (STS). Their features should be very useful in distinguishing the important differences among the stage-$n$ graphite intercalation compounds, and the distinct effects due to the atom or ion decoration.
Li/Li+石墨插层化合物的基本性质
用第一性原理方法深入研究了石墨基三维体系的基本性质。这些材料包括简单的六角形石墨、伯纳尔石墨和一级至四级Li/Li$^+$石墨插层化合物。对它们的最佳叠加构型、峰长、层间距离、自由电子空穴密度、费米能级、化学键转移电荷、原子或离子主导能带、空间电荷分布和插层后的显著变化、Li-/Li$^+$- $\&$ c轨道分解DOSs进行了精细的计算和详细的分析。上述物理量足以确定导致不寻常基本性质的临界轨道杂化。如何通过调节目标原子/目标离子浓度来显著改变低洼电子结构是研究的重点之一,例如费米能级、能带宽度和能带数量的剧烈变化。利用高分辨率角分辨光谱学(ARPES)对n级相关能带结构的理论预测进行了验证。最重要的是,费米附近的低能DOSs可能为估计由于层间原子相互作用或探测-原子/探测-离子插入而导致的自由载流子密度提供可靠的数据。van Hove奇点主要产生于能量波矢量空间的临界点,可以通过扫描隧道光谱(STS)的实验测量直接检测。它们的特征对于区分各阶段石墨插层化合物之间的重要区别以及原子或离子修饰所产生的不同效果是非常有用的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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