首页> 外文期刊>Journal of chemical theory and computation: JCTC >Binding and Diffusion of Lithium in Graphite: Quantum Monte Carlo Benchmarks and Validation of van der Waals Density Functional Methods
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Binding and Diffusion of Lithium in Graphite: Quantum Monte Carlo Benchmarks and Validation of van der Waals Density Functional Methods

机译:锂在石墨中的结合与扩散:量子蒙特卡洛基准和范德华密度泛函方法的验证

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摘要

Highly accurate diffusion quantum Monte Carlo (QMC) studies of the adsorption and diffusion of atomic lithium in AA-stacked graphite are compared with van der Waals-including density functional theory (DFT) calculations. Predicted QMC lattice constants for pure AA graphite agree with experiment. Pure AA-stacked graphite is shown to challenge many van der Waals methods even when they are accurate for conventional AB graphite. Highest overall DFT accuracy, considering pure AA-stacked graphite as well as lithium binding and diffusion, is obtained by the self-consistent van der Waals functional vdW-DF2, although errors in binding energies remain. Empirical approaches based on point charges such as DFT-D are inaccurate unless the local charge transfer is assessed. The results demonstrate that the lithiumcarbon system requires a simultaneous highly accurate description of both charge transfer and van der Waals interactions, favoring self-consistent approaches.
机译:将高准确度的扩散量子蒙特卡罗(QMC)研究原子锂在AA堆积的石墨中的吸附和扩散与包括密度泛函理论(DFT)的范德华方法进行了比较。纯AA石墨的预测QMC晶格常数与实验吻合。事实证明,纯AA堆积的石墨即使对常规AB石墨来说是精确的,也挑战了许多范德华方法。尽管结合能仍存在误差,但考虑到纯的AA堆积石墨以及锂的结合和扩散,可以通过自洽范德华函数vdW-DF2获得最高的总体DFT精度。除非评估本地电荷转移,否则基于点电荷(例如DFT-D)的经验方法是不准确的。结果表明,锂碳体系需要同时高度准确地描述电荷转移和范德华相互作用,因此需要采用自洽的方法。

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