材料科学
超级电容器
分层(地质)
可穿戴计算机
可穿戴技术
光电子学
控制重构
电容感应
纳米技术
电解质
电容器
数码产品
适应性
自愈水凝胶
电子元件
二极管
电子皮肤
柔性电子器件
储能
导电体
晶体管
电容
电极
计算机科学
作者
Yizhou Zhao,Quanduo Liang,Chenbei Wang,Samuel M. Mugo,Marcin Karbarz,Lijia An,Yuyuan Lu,Qiang Zhang
标识
DOI:10.1002/adfm.202517205
摘要
Abstract Shape‐memory supercapacitors (SMCs) offer promising energy solutions for powering wearable sensors and electronic devices, enabling form adaptability on moving bodies and objects. However, traditional SMCs require high temperatures for shape‐editing, posing safety risks for devices, and often suffer from delamination during repeated shape transformations. In this study, a new class of wearable supercapacitors is reported that combine light‐induced shape ‐ memory with strong interfacial adhesion, achieved through a rehydration‐based assembly strategy using hydrogel electrolytes and electrodes. Key to this advancement are cinnamate‐functionalized materials, which undergo reversible [2+2] photocycloaddition under ultraviolet light at different wavelengths, enabling repeatable shape reconfiguration under mild, ambient conditions. The interfacial adhesive stress between the electrode and electrolyte reaches up to 40 kPa, substantially improving structural integrity. The supercapacitors exhibit outstanding electrochemical performance, with capacitance retention rates of 98.6% and 94.8% after 5000 and 10 000 charge–discharge cycles, respectively – surpassing values reported in previous studies. Additionally, they maintain 96.8% capacitance after ten shape‐memory cycles and can be reconfigured into multiple shapes without performance loss. Demonstrations powering a light‐emitting diode and an electronic watch further highlight their practical applicability in wearable and flexible electronics.
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