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α-MoO 中 Mg 离子扩散的能量学的杂化 DFT 研究。

Hybrid DFT investigation of the energetics of Mg ion diffusion in α-MoO.

机构信息

Molecular Sciences Software Institute, Blacksburg, Virginia 24060, USA.

出版信息

Phys Chem Chem Phys. 2018 Oct 3;20(38):24877-24884. doi: 10.1039/c8cp05511d.

Abstract

Rechargeable batteries that utilize divalent Mg ions as the charge carrier species can in principle achieve substantially greater volumetric energy densities than conventional Li-ion batteries. One significant impediment to the development of commercially viable Mg-ion batteries is the slow rate of Mg ion diffusion through otherwise promising cathode materials. Accurate prediction of the activation energies associated with this diffusion process using density functional theory (DFT) is especially challenging due to self-interaction errors intrinsic to DFT that lead to over-delocalization of the d-electrons. One effective but highly computationally demanding approach to reducing self-interaction errors is the use of hybrid functionals, which incorporate a fraction of exact Hartree-Fock exchange. In this work, we assess the effects of exact exchange on computed activation energies for ion diffusion in one potential cathode material, α-MoO3. In contrast to previous studies that primarily utilize non-hybrid functionals, we perform nudged elastic band calculations in which the nuclear coordinates are fully converged using both hybrid functionals and k-point sampling. It is found that while non-hybrid functionals indicate the existence of thermodynamically accessible channels for bulk Mg ion diffusion in all three dimensions, hybrid functionals predict that some of these channels are largely inaccessible under typical charge/discharge conditions. Furthermore, it is demonstrated that certain commonly used approximations for incorporating the effects of Hartree-Fock exchange are inadequate for this system, including DFT+U calculations and the use of single-point hybrid calculations using atomic positions obtained using non-hybrid functionals.

摘要

可充电电池利用二价镁离子作为电荷载流子,理论上可以实现比传统锂离子电池更高的体积能量密度。开发商业上可行的镁离子电池的一个重大障碍是镁离子在其他有前途的阴极材料中的扩散速率缓慢。使用密度泛函理论(DFT)准确预测与该扩散过程相关的活化能特别具有挑战性,因为 DFT 固有的自相互作用误差导致 d 电子过度离域。一种有效但计算要求极高的减少自相互作用误差的方法是使用混合泛函,它包含一部分精确的 Hartree-Fock 交换。在这项工作中,我们评估了精确交换对α-MoO3 一种潜在阴极材料中离子扩散计算活化能的影响。与主要使用非混合泛函的先前研究不同,我们进行了推斥弹性带计算,其中使用混合泛函和 k 点采样对核坐标进行完全收敛。结果发现,虽然非混合泛函表明在所有三个维度上都存在热力学上可访问的大块镁离子扩散通道,但混合泛函预测在典型的充电/放电条件下,其中一些通道在很大程度上无法访问。此外,还证明了某些常用于包含 Hartree-Fock 交换效应的近似方法对于该系统是不够的,包括 DFT+U 计算和使用非混合泛函获得的原子位置进行单点混合计算。

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