4.6 Article

High-Performance Solid Composite Polymer Electrolyte for all Solid-State Lithium Battery Through Facile Microstructure Regulation

期刊

FRONTIERS IN CHEMISTRY
卷 7, 期 -, 页码 -

出版社

FRONTIERS MEDIA SA
DOI: 10.3389/fchem.2019.00388

关键词

all solid-state lithium battery; solid composite polymer electrolyte; microstructure; graphite-like carbonitride; electrochemical property

资金

  1. Key R&D Program of Shaanxi [2017ZDCXL-GY-08-03]
  2. National Natural Science Foundation of China [61604120, 51804259, 21501139]
  3. Scientific Research Program - Shaanxi Provincial Education Department [17JK0380, 18JK0390]
  4. Natural Science Foundation of the province of Shaanxi [2018JQ2037]
  5. Innovation and entrepreneurship training program for college students [1070214082]
  6. Presidential Research Fund of Xi'an Technological University [XAGDXJJ18007]

向作者/读者索取更多资源

Solid composite polymer electrolytes are the optimal candidate for all solid-state lithium batteries, because of their enhanced ionic conductivities, long-life cycle ability and compatibility to lithium anode. Herein, we reported a kind of solid composite polymer electrolyte comprised of poly(ethylene oxide), graphitic-like carbon nitride and lithium perchlorate, which was prepared by a facile solution blending method. Microstructure of the solid composite polymer electrolyte was regulated by thermal annealing and interaction among components and was characterized by XRD, DSC, FTIR-ATR, and ROM. The obtained solid composite polymer electrolyte achieved an ionic conductivity as high as 1.76 x 10(-5) S cm(-1) at 25 degrees C. And the electrochemical stable window and the lithium ion transference number, t(+), were also obviously enhanced. LiFePO4/Li solid-state batteries with the annealed PEO-LiClO4-g-C3N4 solid polymer electrolyte presented a high initial discharge capacity of 161.2 mAh g(-1) and superior cycle stability with a capacity retention ratio of 81% after 200 cycles at 1C at 80 degrees C. The above results indicates that the thermal annealing treatment and g-C3N4 as a novel structure modifier is crucial for obtaining the high-performance solid composite polymer electrolytes used in the all solid-state lithium battery.

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