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Epidermal radio frequency electronics for wireless power transfer

Title
Epidermal radio frequency electronics for wireless power transfer
Author(s)
Huang, XianLiu, YuhaoKong, Gil WooSeo, Jung HunMa, YinjiJang, Kyung-InFan, Jonathan A.Mao, ShiminChen, QiwenLi, DaizhenLiu, HankWang, ChuxuanPatnaik, DwipayanTian, LimeiSalvatore, Giovanni A.Feng, XueMa, ZhenqiangHuang, YonggangRogers, John A.
Issued Date
2016-10
Citation
Microsystems & Nanoengineering, v.2
Type
Article
Author Keywords
antenna designepidermal electronicsmodularizationsilicon nanomembranesoft-contact laminationspecific absorption ratewireless power
Keywords
CARE-SYSTEMSOFTBATTERIESCIRCUITSSENSORSMOBILEHOME
ISSN
2096-1030
Abstract
Epidermal electronic systems feature physical properties that approximate those of the skin, to enable intimate, long-lived skin interfaces for physiological measurements, human–machine interfaces and other applications that cannot be addressed by wearable hardware that is commercially available today. A primary challenge is power supply; the physical bulk, large mass and high mechanical modulus associated with conventional battery technologies can hinder efforts to achieve epidermal characteristics, and near-field power transfer schemes offer only a limited operating distance. Here we introduce an epidermal, far-field radio frequency (RF) power harvester built using a modularized collection of ultrathin antennas, rectifiers and voltage doublers. These components, separately fabricated and tested, can be integrated together via methods involving soft contact lamination. Systematic studies of the individual components and the overall performance in various dielectric environments highlight the key operational features of these systems and strategies for their optimization. The results suggest robust capabilities for battery-free RF power, with relevance to many emerging epidermal technologies. © The Author(s) 2016.
URI
http://hdl.handle.net/20.500.11750/56736
DOI
10.1038/micronano.2016.52
Publisher
Nature Publishing Group | Chinese Academy of Sciences, Institute of Electronics
Related Researcher
  • 장경인 Jang, Kyung-In
  • Research Interests Extreme mechanics; Stand-alone electronics; Heterogeneous materials; Biocompatible interfaces
Files in This Item:
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Appears in Collections:
Department of Robotics and Mechatronics Engineering Bio-integrated Electronics Lab 1. Journal Articles

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