快离子导体
材料科学
钠
掺杂剂
电极
离子
原子单位
无机化学
化学工程
分析化学(期刊)
电解质
化学
冶金
兴奋剂
光电子学
物理化学
色谱法
有机化学
物理
量子力学
工程类
作者
V. Seshan,Poobalasuntharam Iyngaran,Poobalasingam Abiman,Navaratnarajah Kuganathan
出处
期刊:Physchem
[MDPI AG]
日期:2024-12-30
卷期号:5 (1): 1-1
标识
DOI:10.3390/physchem5010001
摘要
Na3V2(PO4)3 (NVP), a NASICON-type material, has gained attention as a promising battery cathode owing to its high sodium mobility and excellent structural stability. Using computational simulation techniques based on classical potentials and density functional theory (DFT), we examine the defect characteristics, diffusion mechanisms, and dopant behavior of the NVP. The study found that the Na Frenkel defect is the most favorable intrinsic defect, supporting the desodiation process necessary for capacity and enabling vacancy-assisted Na-ion migration. The Na migration is anticipated through a long-range zig-zag pathway with an overall activation energy of 0.70 eV. K and Sc preferentially occupy Na and V sites without creating charge-compensating defects. Substituting Mg at the V site can simultaneously increase Na content by forming interstitials and reducing the band gap. Additionally, doping Ti at the V site promotes the formation of Na vacancies necessary for vacancy-assisted migration, leading to a notable improvement in electronic conductivity.
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