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A Single‐Layer Piezoelectric Composite Separator for Durable Operation of Li Metal Anode at High Rates.

Authors :
Ji, Yuanpeng
Yuan, Botao
Zhang, Jiawei
Liu, Zhezhi
Zhong, Shijie
Liu, Jipeng
Liu, Yuanpeng
Yang, Mengqiu
Wang, Changguo
Yang, Chunhui
Han, Jiecai
He, Weidong
Source :
Energy & Environmental Materials; Jan2024, Vol. 7 Issue 1, p1-10, 10p
Publication Year :
2024

Abstract

Piezoelectric ceramic and polymeric separators have been proposed to effectively regulate Li deposition and suppress dendrite growth, but such separators still fail to satisfactorily support durable operation of lithium metal batteries owing to the fragile ceramic layer or low‐piezoelectricity polymer as employed. Herein, by combining PVDF‐HFP and ferroelectric BaTiO3, we develop a homogeneous, single‐layer composite separator with strong piezoelectric effects to inhibit dendrite growth while maintaining high mechanical strength. As squeezed by local protrusion, the polarized PVDF‐HFP/BaTiO3 composite separator generates a local voltage to suppress the local‐intensified electric field and further deconcentrate regional lithium‐ion flux to retard lithium deposition on the protrusion, hence enabling a smoother and more compact lithium deposition morphology than the unpoled composite separator and the pure PVDF‐HFP separator, especially at high rates. Remarkably, the homogeneous incorporation of BaTiO3 highly improves the piezoelectric performances of the separator with residual polarization of 0.086 μC cm−2 after polarization treatment, four times that of the pure PVDF‐HFP separator, and simultaneously increases the transference number of lithium‐ion from 0.45 to 0.57. Beneficial from the prominent piezoelectric mechanism, the polarized PVDF‐HFP/BaTiO3 composite separator enables stable cyclic performances of Li||LiFePO4 cells for 400 cycles at 2 C (1 C = 170 mA g−1) with a capacity retention above 99%, and for 600 cycles at 5 C with a capacity retention over 85%. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
25750356
Volume :
7
Issue :
1
Database :
Complementary Index
Journal :
Energy & Environmental Materials
Publication Type :
Academic Journal
Accession number :
175704375
Full Text :
https://doi.org/10.1002/eem2.12510