Wafer-scale integrated micro-supercapacitors on an ultrathin and highly flexible biomedical platform

被引:0
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作者
Jimin Maeng
Chuizhou Meng
Pedro P. Irazoqui
机构
[1] Purdue University,Center for Implantable Devices, Weldon School of Biomedical Engineering
来源
Biomedical Microdevices | 2015年 / 17卷
关键词
Energy storage; Flexible; Implantable devices; Micro-supercapacitors; Wafer-scale integration;
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学科分类号
摘要
We present wafer-scale integrated micro-supercapacitors on an ultrathin and highly flexible parylene platform, as progress toward sustainably powering biomedical microsystems suitable for implantable and wearable applications. All-solid-state, low-profile (<30 μm), and high-density (up to ~500 μF/mm2) micro-supercapacitors are formed on an ultrathin (~20 μm) freestanding parylene film by a wafer-scale parylene packaging process in combination with a polyaniline (PANI) nanowire growth technique assisted by surface plasma treatment. These micro-supercapacitors are highly flexible and shown to be resilient toward flexural stress. Further, direct integration of micro-supercapacitors into a radio frequency (RF) rectifying circuit is achieved on a single parylene platform, yielding a complete RF energy harvesting microsystem. The system discharging rate is shown to improve by ~17 times in the presence of the integrated micro-supercapacitors. This result suggests that the integrated micro-supercapacitor technology described herein is a promising strategy for sustainably powering biomedical microsystems dedicated to implantable and wearable applications.
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