4.8 Article

High air-stability and superior lithium ion conduction of Li3+3xP1-xZnxS4-xOx by aliovalent substitution of ZnO for all-solid-state lithium batteries

Journal

ENERGY STORAGE MATERIALS
Volume 17, Issue -, Pages 266-274

Publisher

ELSEVIER
DOI: 10.1016/j.ensm.2018.07.008

Keywords

aliovalent substitution; high air-stability; superior lithium ion conductivity; theoretical calculation; all-solid-state lithium battery

Funding

  1. National Key R&D Program of China [2018YFB0905400]
  2. Strategic Priority Program of the Chinese Academy of Sciences [XDA09010201, XDA09010203]
  3. National Natural Science Foundation of China [51502317, 51772321]
  4. Zhejiang Provincial Natural Science Foundation of China [LQ16E020003, LY18E020018, LY18E030011, LD18E020004]
  5. National Key Research and Development Program of China [2016YFB0100105]
  6. Youth Innovation Promotion Association of the Chinese Academy of Sciences [2017342, 2016005]

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A series of new solid electrolytes of Li(3+3)xP(1-x)ZnxS(4-x)O(x) (x = 0.01, 0.02, 0.03, 0.04, 0.05, 0.06) are synthesized successfully via Zn, O co-doping the Li3PS4 glass-ceramic for the first time. The result shows that Li3PS4 aliovalent substitution of 2 mol% ZnO (Li3.06P0.98Zn0.02S3.98O0.02) presents the highest conductivity of 1.12x10(-3) S cm(-1) at room temperature, which is twice that of the pristine Li3PS4. Besides, Li3.06P0.98Zn0.02S3.98O0.02 exhibits excellent stability against humid air, lithium metal and chlorobenzene solvent. The mechanisms of the enhancement of conductivity and air-stability are well understood by conducting first-principles density functional theory (DFT) calculation and Bond-Valence (BV) analysis, and the results well demonstrate that the conductivity and air-stability of Li3PS4 could be improved via Zn, O dualdoping, in which partial P5+ could be substituted by Zn2+, and a part of S2-could be replaced by O2-. Finally, the all-solid-state lithium battery (ASSLB) with bi-layer electrolytes of LiCoO2/Li10GeP2S12/Li3.06P0.98Zn0.02S3.98O0.02/Li is assembled, and it delivers an initial discharge capacity of 139.1 mAh g(-1) at 0.1 C and a capacity retention of 81.0% after 100 cycles at room temperature. This work combines systematical experimental characterizations and sufficient theoretical calculations to develop a new promising sulfide electrolyte with superior lithium ion conductivity and high air-stability for ASSLBs application.

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