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Borate-containing triblock copolymer electrolytes for improved lithium-ion transference number and interface stability. | LitMetric

Borate-containing triblock copolymer electrolytes for improved lithium-ion transference number and interface stability.

J Colloid Interface Sci

National & Local United Engineering Laboratory for Power Battery, Department of Chemistry, Northeast Normal University, Changchun 130024, China. Electronic address:

Published: April 2024

AI Article Synopsis

  • High lithium-ion transference numbers in electrolytes reduce concentration polarization, enhancing the performance of lithium-ion batteries (LIBs).
  • The new triblock copolymer electrolyte (PBOEE) incorporates borate, which anchors lithium salt anions and achieves a high transference number of 0.53.
  • The PBOEE_24 exhibits excellent ionic conductivity (1.41 × 10⁻⁶ S cm) and operates stably under various conditions, resulting in impressive cycling performance and capacity retention in lithium cells.

Article Abstract

The electrolytes with high lithium-ion transference number (t) can reduce the formation of concentration polarization during charge/discharge process and improve the electrochemical performance of lithium-ion batteries (LIBs). Herein, we report triblock copolymer electrolytes (PBOEE) containing borate. The sp hybridized boron atoms acting as Lewis acids can anchor the anions of lithium salts, enabling PBOEE to achieve high t of up to 0.53. Also, the borate groups can promote the formation of stable organic-rich solid electrolyte interphase (SEI) film, which enables the Li symmetric cell to cycle stably at 0.1 mA cm/0.1 mAh cm for more than 3100 h with a low overpotential of 0.08 V under 50 °C. The optimized PBOEE_24 has an ionic conductivity of 1.41 × 10 S cm and electrochemical stability window of 4.8 V vs. Li/Li at 50 °C. Combining these advantages, the LiFePO/PBOEE_24/Li cell exhibits an initial discharge specific capacity of 157.3 mA h g at 0.5C with a capacity retention of 85 % after 600 cycles under 50 °C. At a higher current density of 1C, the discharge capacity maintains at 128.0 mA h g after 400 cycles with a capacity retention of 84.88 %. These results suggest that block copolymer containing sp hybridized boron atoms is a promising all-solid-state polymer electrolyte.

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Source
http://dx.doi.org/10.1016/j.jcis.2024.01.097DOI Listing

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