材料科学
锌
阴极
钒
纳米技术
功率密度
佩多:嘘
储能
纳米纤维
氧化钒
离子
化学工程
图层(电子)
功率(物理)
冶金
有机化学
化学
物理
物理化学
量子力学
工程类
作者
Se Hun Lee,Jeonguk Hwang,Chiho Song,Changyong Park,Hyung‐Seok Kim,Heejoon Ahn
标识
DOI:10.1002/adfm.202310571
摘要
Abstract Highly stretchable and cycle‐stable (high operando dynamic stretchable) zinc‐ion microbatteries that are nonharmful, environmentally friendly, and low cost are developed herein for the first time. Stretchable zinc‐ion microbatteries (SZIMBs) are fabricated by simultaneously incorporating the facile synthesis of conducting polymer‐intercalated vanadium oxide nanofibers as flexible and elastic cathode materials; the construction, design, and assembly of wavy‐type microdevices; and pre‐zincation techniques that break stereotypes. The poly(3,4‐ethylene dioxythiophene) (PEDOT)‐intercalated zinc vanadium oxide nanofiber zinc‐ion microbatteries (E‐ZVONF‐SZIMBs) manufactured by combining these strategies exhibit a maximum specific capacity of 0.16 mAh cm −2 , high energy density of 0.112 mWh cm −2 , and high power density of 3.5 mW cm −2 and maintain 83.7% of the initial specific capacity after 500 cycles. The E‐ZVONF‐SZIMBs maintain 78.9% of their initial specific capacity even after 7000 mechanical stretching/bending tests, exhibiting excellent operando dynamic stretchability. The stretchable zinc‐ion microbatteries show practical feasibility by maintaining 80% and 90% of the capacity at −20 and 60°C under 200% strain, respectively. These remarkable achievements in the field of stretchable zinc‐ion microbatteries are expected to have significant implications for the development of future device platforms.
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