1. Academic Validation
  2. Enhanced Thermal Stability of Mesoporous Carbon Microbeads-Based Lithium-Ion Batteries by Propargyl Methacrylate as Electrolyte Additive

Enhanced Thermal Stability of Mesoporous Carbon Microbeads-Based Lithium-Ion Batteries by Propargyl Methacrylate as Electrolyte Additive

  • Polymers (Basel). 2022 Oct 24;14(21):4491. doi: 10.3390/polym14214491.
Yu-Ruei Kung 1 Jing-Tang Su 1 Chiung-Cheng Huang 1 Yaoming Xiao 2 Jeng-Yu Lin 3
Affiliations

Affiliations

  • 1 Department of Chemical Engineering and Biotechnology, Tatung University, Taipei 104327, Taiwan.
  • 2 College of Chemical Engineering and Materials Science, Quanzhou Normal University, Quanzhou 362046, China.
  • 3 Department of Chemical and Materials Engineering, Tunghai University, Taichung City 407224, Taiwan.
Abstract

In this current work, propargyl methacrylate (PMA) was successfully adopted to be an efficient electrolyte additive to stabilize the formation of a solid electrolyte interface (SEI) layer on mesoporous carbon microbeads (MCMB) in Li-ion batteries, especially at elevated temperatures. According to a series of material and electrochemical characterizations, the optimized concentration of PMA additive in the electrolyte was found to be 0.5 wt.%. The MCMB electrode cycled with the optimized 0.5 wt.% PMA-containing electrolyte exhibited impressive capacity retention of 90.3% after 50 cycles at 0.1C at elevated temperature, which was remarkably higher than that using the PMA-free electrolyte (83.5%). The improved electrochemical stability at elevated temperature could be ascribed to the rapid formation of stable and thin SEI layer on MCMB surface, which were investigated and suggested to be formed via PMA copolymerization reactions.

Keywords

mesoporous carbon microbeads (MCMB); propargyl methacrylate (PMA); solid electrolyte interface (SEI).

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