首页> 中文期刊> 《材料科学技术:英文版》 >Maximizing ionic transport of Li1+xAlxTi2-xP3O12 electrolytes for all-solid-state lithium-ion storage:A theoretical study

Maximizing ionic transport of Li1+xAlxTi2-xP3O12 electrolytes for all-solid-state lithium-ion storage:A theoretical study

         

摘要

The concept of all-solid-state batteries provides an efficient solution towards highly safe and long-life energy storage,while the electrolyte-related challenges impede their practical application.Li1+xAlxTi2-xP3O12(0≤x≤1)with superior Li ionic conductivity holds the promise as an ideal solidstate electrolyte.The intrinsic mechanism to reach the most optimum ionic conductivity in Al-doped Li1+xAlxTi2-xP3O12,however,is unclear to date.Herein,this work intends to provide an atomic scale study on the Li-ion transport in Li1+xAlxTi2-xP3O12electrolyte to rationalize how Al-dopant initiates interstitial Li activity and facilitate their easy mobility combining Density Functional Theory(DFT)and ab initio Molecular dynamics(AIMD)simulations.It is discovered that the interstitial Li ions introduced by Al dopants can effectively activate the neighboring occupied intrinsic Li-ions to induce a long-range mobility in the lattice and the maximum Li ionic conductivity is achieved at 0.50 Al doping concentration.The Li-ion migration paths in Li1+xAlxTi2-xP3O12have investigated as the degree of distortion of[PO4]tetrahedra and[TiO6]octahedra resulted by different Al doping concentrations.The asymmetry of the surrounding distorted[PO4]and[TiO6]polyhedrons play a critical role in reducing the migration barrier of Li ions in Li1+xAlxTi2-xP3O12.The flexible[Ti O6]polyhedrons with a capacity to accommodate the structural distortion govern the Li ionic conductivity in Li1+xAlxTi2-xP3O12.This work rationalizes the mechanism for the most optimum Li ionic conductivity in Al-doped Li Ti2P3O12electrolyte and,more importantly,paves a road for exploring novel all-solid-state lithium battery electrolytes.

著录项

  • 来源
    《材料科学技术:英文版》 |2021年第14期|45-51|共7页
  • 作者单位

    State Key Laboratory of High Performance Ceramics and Superfine Microstructure;

    Shanghai Institute of Ceramics;

    Chinese Academy of Sciences;

    1295 Dingxi Road;

    Shanghai 200050;

    China;

    School of Mechanical;

    Medical and Process Engineering;

    Queensland University of Technology;

    2 George Street;

    Brisbane;

    QLD;

    4000;

    Australia;

    School of Chemistry and Physics;

    Queensland University of Technology;

    2 George Street;

    Brisbane;

    QLD;

    4000;

    Australia;

    Centre of Materials Science and Optoelectronics Engineering;

    University of Chinese Academy of Sciences;

    Beijing 100049;

    China;

    Centre for Materials Science;

    Queensland University of Technology;

    2 George Sfreef;

    Brisbane.QLD;

    4000;

    Australia;

  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 蓄电池;
  • 关键词

    Density Functional Theory; Solid-state-electrolyte; Li ionic conductivity; Bond angle variance; Al-dopant;

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