4.8 Article

Lithium-Rich Anti-perovskite Li2 OHBr-Based Polymer Electrolytes Enabling an Improved Interfacial Stability with a Three-Dimensional-Structured Lithium Metal Anode in All-Solid-State Batteries

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 24, Pages 28108-28117

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c04514

Keywords

lithium-rich anti-perovskite; solid-state polymer electrolytes; lithium dendrites; 3D-structured lithium metal anodes; all-solid-state batteries

Funding

  1. Shenzhen Key Laboratory of Solid State Batteries [ZDSYS20180208184346531]
  2. Guangdong Basic and Applied Basic Research Foundation [2020A1515111129]
  3. Shenzhen Science and Technology Program [KQTD20200820113047086]
  4. Key Program of the National Natural Science Foundation of China [51732005]
  5. National Key R&D Program of China [2018YFB0104300]
  6. Guangdong Provincial Key Laboratory of Energy Materials for Electric Power [2018B030322001]
  7. Guangdong-Hong Kong-Macao Joint Laboratory for Photonic-Thermal-Electrical Energy Materials and Devices [2019B121205001]
  8. Key Laboratory of Energy Conversion and Storage Technologies (Southern University of Science and Technology), Ministry of Education
  9. Laboratory of Electrochemical Energy Storage Technologies, Academy for Advanced Interdisciplinary Studies (SUSTech)

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The study demonstrates that Li2OHBr-containing PEO polymer electrolyte can alleviate the interfacial issues of 3D-structured metal-based electrodes and suppress lithium dendrite formation, improving the cycle stability and rate performance of lithium-metal batteries.
All-solid-state lithium-metal batteries, with their high energy density and high-level safety, are promising next-generation energy storage devices. Their current performance is however compromised by lithium dendrite formation. Although using 3D-structured metal-based electrode materials as hosts to store lithium metal has the potential to suppress the lithium dendrite growth by providing a high surface area with lithiophilic sites, their rigid and ragged interface with solid-state electrolytes is detrimental to the battery performance. Herein, we show that Li2OHBr-containing poly(ethylene oxide) (PEO) polymer electrolytes can be used as a flexible solid-state electrolyte to mitigate the interfacial issues of 3D-structured metal-based electrodes and suppress the lithium dendrite formation. The presence of Li2OHBr in a PEO matrix can simultaneously improve the mechanical strength and lithium ion conductivity of the polymer electrolyte. It is confirmed that Li2OHBr does not only induce the PEO transformation of a crystalline phase to an amorphous phase but also serves as an anti-perovskite superionic conductor providing additional lithium ion transport pathways and hence improves the lithium ion conductivity. The good interfacial contact and high lithium ion conductivity provide sufficient lithium deposition sites and uniform lithium ion flux to regulate the lithium deposition without the formation of lithium dendrites. Consequently, the Li2OHBr-containing PEO polymer electrolyte in a lithium-metal battery with a 3D-structured lithium/copper mesh composite anode is able to improve the cycle stability and rate performance. The results of this study provide the experimental proof of the beneficial effects of the Li2OHBr-containing PEO polymer electrolyte on the 3D-structured lithium metal anode.

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