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Implanted Battery-Free Direct-Current Micro-Power Supply from in Vivo Breath Energy Harvesting

  • Jun Li
  • , Lei Kang
  • , Yin Long
  • , Hao Wei
  • , Yanhao Yu
  • , Yizhan Wang
  • , Carolina A. Ferreira
  • , Guang Yao
  • , Ziyi Zhang
  • , Corey Carlos
  • , Lazarus German
  • , Xiaoli Lan
  • , Weibo Cai
  • , Xudong Wang

Research output: Contribution to journalArticlepeer-review

68 Scopus citations

Abstract

In vivo biomechanical energy harvesting by implanted nanogenerators (i-NGs) is promising for self-powered implantable medical devices (IMDs). One critical challenge to reach practical applications is the requirement of continuous direct-current (dc) output, while the low-frequency body activities typically generate discrete electrical pulses. Here, we developed an ultrastretchable micrograting i-NG system that could function as a battery-free dc micro-power supply. Packaged by a soft silicone elastomer with a cavity design, the i-NG exhibited an ultralow Young's modulus of â45 kPa and a high biocompatibility to soft biological tissues. The i-NG was implanted inside the abdominal cavity of Sprague Dawley adult rats and directly converted the slow diaphragm movement during normal respiration into a high-frequency alternative current electrical output, which was readily transmitted into a continuous â2.2 V dc output after being integrated with a basic electrical circuit. A light-emitting diode was constantly operated by the breath-driven i-NG without the aid of any battery component. This solely biomechanical energy-driven dc micro-power supply offers a promising solution for the development of self-powered IMDs.

Original languageEnglish
Pages (from-to)42030-42038
Number of pages9
JournalACS Applied Materials and Interfaces
Volume10
Issue number49
DOIs
StatePublished - 12 Dec 2018
Externally publishedYes

Keywords

  • battery-free system
  • direct-current micro-power source
  • energy harvesting from respiration
  • implantable medical devices
  • implantable nanogenerator

ASJC Scopus subject areas

  • General Materials Science

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