High-performance solid-state zinc-ion batteries enabled by flexible and highly Zn 2+ conductive solid-polymer electrolyte
The utilization of solid-polymer electrolytes (SPEs) is of great interest to construct high-performance energy storage systems, owing to the high flexibility/elasticity, high thermal properties, reduced dendrite formation, suppression of cathode dissolution, and overcoming of leakage and safety issu...
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Published in | Journal of materials chemistry. A, Materials for energy and sustainability Vol. 11; no. 26; pp. 14075 - 14085 |
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Main Authors | , , , , , |
Format | Journal Article |
Language | English |
Published |
04.07.2023
|
Online Access | Get full text |
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Summary: | The utilization of solid-polymer electrolytes (SPEs) is of great interest to construct high-performance energy storage systems, owing to the high flexibility/elasticity, high thermal properties, reduced dendrite formation, suppression of cathode dissolution, and overcoming of leakage and safety issues associated with liquid electrolytes. Herein, we propose a flexible and highly Zn
2+
conductive solid-polymer electrolyte (SPE) for solid-state zinc-ion batteries. The proposed PVA-inter-PEG
30%
/IL
70%
SPE exhibits high Zn
2+
ionic conductivity (2.264 mS cm
−1
), low glass transition temperature (
T
g
= −10.2 °C), good thermal stability (>200 °C), and higher oxidation stability against zinc (∼2.8 V). Moreover, PVA-inter-PEG
30%
/IL
70%
SPE provides a stable interfacial contact to the zinc anode and enables dendrite-free zinc stripping/platting over 3000 h of cycling at 0.2 mA cm
−2
. The solid-state Zn//V
10
O
24
·
n
H
2
O cell fabricated with PVA-inter-PEG
30%
/IL
70%
SPE delivered a discharge capacity as high as 325 mA h g
−1
at 0.1 A g
−1
and demonstrates good rate performance (∼325/110 mA h g
−1
at 0.1/10 A g
−1
, respectively) with reasonable cycling stability. Besides, the PVA-inter-PEG
30%
/IL
70%
SPE applied in the fabrication of a flexible pouch-cell prototype demonstrates safety performance and can serve as promising and reliable energy storage devices for flexible and wearable applications. |
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ISSN: | 2050-7488 2050-7496 |
DOI: | 10.1039/D3TA00133D |