A Bioresorbable and Bioimplantable Energy Harvesting‐Storage Integrated System as Wireless Power Supply for Biomedical Electronics

J Junjie Zhou H Haonan Zhao (Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), Fusionopolis Way, Innovis #08-03, Singapore 138634, Republic of Singapore) J Jizheng Zhang (Department of Urology Qilu Hospital Cheeloo College of Medicine Shandong University Jinan P. R. China) Y Yanle He (School of Integrated Circuits, Shandong University 1 , Jinan 250100,) A Ailing Yin (School of Integrated Circuits, Shandong University 1 , Jinan 250100,) X Xiaozhong Wu (School of Chemistry and Chemical Engineering Shandong Key Laboratory of Critical Materials and Technologies for Hydrogen Energy Shandong University of Technology Zibo People's Republic of China) Z Zhiwei Wang (International Joint Research Laboratory of Nano-Micro Architecture Chemistry, Institute of Theoretical Chemistry and College of Chemistry) D Deyu Meng J Jianyou Zhao X Xinyu Wang Q Qizheng Liu (School of Integrated Circuits Shandong University Jinan P. R. China) M Min Liu Y Yan Li Q Qinglei Guo (School of Integrated Circuits, Shandong University 3 , Jinan 250100,)

Abstract

ABSTRACT The development of transient energy harvesting or storage devices has provided a revolutionary power supply solution for the new generation of implantable biomedical electronics or disposable environmental sensors. However, existing power supply schemes still struggle to meet the requirements, such as biocompatibility, biodegradability, high electrochemical performances, and/or recyclable power output, for practical applications. In this study, we present a bioresorbable and bioimplantable wireless energy harvesting‐storage system (WEHSS), of which electromagnetic energies can be harvested by a planar coil through near‐field inductive coupling, then be stored by the integrated bioresorbable zinc‐ion battery (BZIB). Glucose/zinc sulfate/gelatin (Glu/ZS/Gel) hydrogel that can efficiently inhibit the growth of Zn dendrites, the corrosion of Zn electrodes, and the accumulation of insulating by‐products is introduced as the electrolyte of BZIB, thus enabling the fast charging and robust power output of WEHSS. In addition, their biocompatibility is evaluated in living rabbit models, and fully in vivo degradation within 16 weeks without adverse biological reactions to either major organs or blood chemistry is demonstrated. The presented materials and device platforms add to the portfolio of bioresorbable and bioimplantable power supply options for biomedical electronics.

Article Details

Volume / Issue Vol. 38, Issue 12
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

J

Junjie Zhou

H

Haonan Zhao

Institute of Materials Research and Engineering (IMRE), Agency for Science, Technology and Research (A*STAR), Fusionopolis Way, Innovis #08-03, Singapore 138634, Republic of Singapore

J

Jizheng Zhang

Department of Urology Qilu Hospital Cheeloo College of Medicine Shandong University Jinan P. R. China

Y

Yanle He

School of Integrated Circuits, Shandong University 1 , Jinan 250100,

A

Ailing Yin

School of Integrated Circuits, Shandong University 1 , Jinan 250100,

X

Xiaozhong Wu

School of Chemistry and Chemical Engineering Shandong Key Laboratory of Critical Materials and Technologies for Hydrogen Energy Shandong University of Technology Zibo People's Republic of China

Z

Zhiwei Wang

International Joint Research Laboratory of Nano-Micro Architecture Chemistry, Institute of Theoretical Chemistry and College of Chemistry

D

Deyu Meng

J

Jianyou Zhao

X

Xinyu Wang

Q

Qizheng Liu

School of Integrated Circuits Shandong University Jinan P. R. China

M

Min Liu

Y

Yan Li

Q

Qinglei Guo

School of Integrated Circuits, Shandong University 3 , Jinan 250100,