Spatially Programmable Electroadhesive Enables In Situ Site‐Selective Functional Coupling

Y Yuting Guo Z Zhuoming Liang (Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore) G Guoshi Xu (State Key Laboratory of Rare Earth Resource Utilization and Laboratory of Chemical Biology Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun Jilin People's Republic of China) Z Zhen Gu Y Yuheng Xu (Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore) M Michael Raphael Panganiban (Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore) X Xue Cai J Jet Yong Kiat Lim (Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore) J Jiguang Zhang (Department of Chemical and Biomolecular Engineering) J Jingxiu Huang T Tingting Fan (Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, School of Chemistry and Chemical Engineering) Q Qi Gu Y Yuxin Liu

Abstract

Abstract Precise intraoperative integration of bioelectronic devices with wet tissue surfaces remains a challenge due to the limited spatial control of adhesion sites. Here, an in situ spatially programmable electrical bioadhesive (termed “STICH”) is reported that enables site‐selective adhesion and functional coupling via light‐activated bonding with wet biological tissue. Upon irradiation with patterned green light, Rose Bengal in a chitosan/silver nanowire hydrogel matrix generates singlet oxygen, which oxidizes amino acid residues into carbonyl groups on the tissue surface. The covalent bonding is then formed between the newly formed reactive carbonyl group and amine groups on chitosan. The spatially programmable adhesive allows robust tissue bonding with a lap‐shear strength of 160 kPa and precise adhesion regions at ≈2 µm resolution. The light‐patternable adhesive enables spatially resolved mechanical coupling for directional electromechanical sensing on ex vivo cardiac tissue. The low impedance adhesive interface also provides spatially programmed electrical coupling for in vivo neuromuscular stimulation on intraoperatively selected muscle groups. This platform advances microscale device‐tissue integration and paves the way for reconfigurable bioelectronic therapies.

Article Details

Volume / Issue Vol. 37, Issue 50
Published December 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (13)

Y

Yuting Guo

Z

Zhuoming Liang

Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore

G

Guoshi Xu

State Key Laboratory of Rare Earth Resource Utilization and Laboratory of Chemical Biology Changchun Institute of Applied Chemistry Chinese Academy of Sciences Changchun Jilin People's Republic of China

Z

Zhen Gu

Y

Yuheng Xu

Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore

M

Michael Raphael Panganiban

Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore

X

Xue Cai

J

Jet Yong Kiat Lim

Department of Biomedical Engineering National University of Singapore Singapore 117583 Singapore

J

Jiguang Zhang

Department of Chemical and Biomolecular Engineering

J

Jingxiu Huang

T

Tingting Fan

Key Laboratory of Green Chemical Media and Reactions, Ministry of Education, Collaborative Innovation Center of Henan Province for Green Manufacturing of Fine Chemicals, School of Chemistry and Chemical Engineering

Q

Qi Gu

Y

Yuxin Liu