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Energy landscape and diffusion kinetics of lithiated silicon: A kinetic activation-relaxation technique study

机译:锂硅的能量分布和扩散动力学:动力学活化松弛技术研究

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摘要

With large specific and volumetric capacity, lithiated silicon is an excellent anode for lithium-ion batteries. Its application is challenged today, however, by the formation of an amorphous a-Li_xSi phase associated with a large volume change that occurs at relatively low Li concentration and remains only very partly understood at the microscopic level. In this paper, we characterize the full energy landscape associated with the onset of Li insertion in crystalline Si as a first step for understanding the lithiation process. We identify the diffusion mechanisms and migration energies for one to ten Li atoms in a Si crystal as well as the average lifetime of small lithium aggregates, using the kinetic activation-relaxation technique (kART), an off-lattice kinetic Monte-Carlo method with on-the-fly catalog building capabilities coupled to a newly developed force field (ReaxFF) used as potential based on ab initio results. We show that the short lifetimes of the bound states (from meV to ten meV) mean that Li atoms move in the interstitial sublattice with little interactions, explaining how high Li concentration in Si can be reached.
机译:锂硅具有大的比容和体积容量,是锂离子电池的绝佳阳极。然而,今天的应用受到挑战,因为形成了非晶态的a-Li_xSi相,该相与大的体积变化有关,该变化发生在相对较低的Li浓度下,并且在微观水平上仍然只有部分被理解。在本文中,我们将表征与晶体硅中的Li插入开始有关的完整能量分布图作为了解锂化过程的第一步。我们使用动力学活化松弛技术(kART)(一种非晶格动力学蒙特卡洛方法,用一种方法)确定了Si晶体中1至10个Li原子在硅晶体中的扩散机理和迁移能以及小锂聚集体的平均寿命。动态的目录构建功能,再加上新开发的力场(ReaxFF),可根据从头算的结果将其用作潜力。我们表明,结合态的短寿命(从meV到10 meV)意味着Li原子在间隙亚晶格中以很少的相互作用移动,这说明可以达到Si中的Li高浓度。

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  • 来源
    《Physical review. B, Condensed Matter And Materals Physics》 |2017年第13期|134118.1-134118.12|共12页
  • 作者单位

    Departement de physique and Regroupement quebecois sur les materiaux de pointe, Universite de Montreal, CP. 6128, Succursale Centre-Vdle, Montreal, Quebec, Canada H3C 3J7;

    Departement de physique and Regroupement quebecois sur les materiaux de pointe, Universite de Montreal, CP. 6128, Succursale Centre-Vdle, Montreal, Quebec, Canada H3C 3J7;

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