Published August 2022 | Version v1
Journal article

Unraveling the stable cathode electrolyte interface in all solid-state thin-film battery operating at 5 V

  • 1. Department of NanoEngineering, University of California San Diego, La Jolla, CA, 92093 (United States)
  • 2. Materials Science and Engineering Program, University of California San Diego, La Jolla, CA, 92093 (United States)
  • 3. Material Measurement Laboratory, National Institute of Standards and Technology, Gaithersburg, MD, 20899 (United States)
  • 4. School of Mechanical Engineering, Pusan National University, Busan, 46241 (Korea, Republic of)
  • 5. Pritzker school of Molecular Engineering, University of Chicago, Chicago, IL, 60637 (United States)

Description

Spinel-type LiNi0.5Mn1.5O4 (LNMO) is one of the most promising 5 V-class cathode materials for Li-ion batteries that can achieve high energy density and low production costs. However, in liquid electrolyte cells, the high voltage causes continuous cell degradation through the oxidative decomposition of carbonate-based liquid electrolytes. In contrast, some solid-state electrolytes have a wide electrochemical stability range and can withstand the required oxidative potential. In this work, a thin-film battery consisting of an LNMO cathode with a solid lithium phosphorus oxynitride (LiPON) electrolyte is tested and their interface before and after cycling is characterized. With Li metal as the anode, this system can deliver stable performance for 600 cycles with an average Coulombic efficiency >99%. Neutron depth profiling indicates a slight overlithiated layer at the interface prior to cycling, a result that is consistent with the excess charge capacity measured during the first cycle. Cryogenic electron microscopy further reveals intimate contact between LNMO and LiPON without noticeable structure and chemical composition evolution after extended cycling, demonstrating the superior stability of LiPON against a high voltage cathode. Consequently, design guidelines are proposed for interface engineering that can accelerate the commercialization of a high voltage cell with solid or liquid electrolytes. (© 2022 The Authors. Advanced Energy Materials published by Wiley‐VCH GmbH)

Availability note (English)

Available from: http://dx.doi.org/10.1002/aenm.202201119

Additional details

Identifiers

Publishing Information

Journal Title
Advanced Energy Materials
Journal Volume
12
Journal Issue
31
Journal Page Range
p. 1-11
ISSN
1614-6832
CODEN
ADEMBC

Optional Information

Notes
AID: 2201119