Low-Temperature High-Rate Capabilities of Lithium Batteries via Polarization-Assisted Ion Pathways

作者:Teranishi Takashi; Katsuji Naoto; Chajima Keisuke; Yasuhara Sou; Inohara Masahiro; Yoshikawa Yumi; Yasui Shintaro; Hayashi Hidetaka; Kishimoto Akira; Itoh Mitsuru
来源:Advanced Electronic Materials, 2018, 4(4): 1700413.
DOI:10.1002/aelm.201700413

摘要

<jats:title>Abstract</jats:title><jats:p>On‐board vehicle applications dictate the need for improved low‐temperature power densities of rechargeable batteries. Integration of high‐permittivity artificial dielectric solid electrolyte interfaces (SEIs) into the lithium ion battery architecture is a promising path to satisfy this need. The relationship between the permittivity of various artificial dielectric SEIs and the resulting high‐rate capability at low temperatures is investigated. Room‐temperature studies reveal a weak relationship between these variables. However, at low temperatures, the correlation between the larger permittivity of the dielectric SEIs and the greater high‐rate capabilities of the cells is striking. The high‐rate capabilities for pulsed laser deposition‐synthesized cathode thin films with various BaTiO<jats:sub>3</jats:sub> (BTO) SEIs covering configurations are evaluated. A remarkable improvement in the high‐rate capability is observed for LiCoO<jats:sub>2</jats:sub> (LCO) modified with dot BTOs, while the rate capability for planar BTO (fully covered LCO) is weakened significantly. A series of experimental results prove that a large polarization, <jats:italic>P</jats:italic>, in the dielectric SEIs intensified with permittivity accelerates interfacial charge transfer near the dielectrics–LCO–electrolyte triple junction.</jats:p>

  • 出版日期2018-4