A Geometrically Transient Platform for Bioelectronic Implants

S Selin Olenik (Department of Bioengineering, Royal School of Mines, Imperial College London) J John D. Goodwin (Department of Bioengineering Imperial College London London UK) A Atharv Naik (Department of Bioengineering Imperial College London London UK) P Philip Coatsworth (Department of Bioengineering Imperial College London London UK) I Ioi Chit Cheung (Department of Bioengineering Imperial College London London UK) F Farbod Amirghasemi (Alfred E. Mann Department of Biomedical Engineering University of Southern California Los Angeles California USA) A Anies Sohi (Department of Medicine Imperial College London London UK) E Ehsan Abedi (Department of Bioengineering Imperial College London London UK) T Tayeb Tadlaoui (Department of Bioengineering, Royal School of Mines, Imperial College London) M Maral P. S. Mousavi (Alfred E. Mann Department of Biomedical Engineering University of Southern California Los Angeles California USA) A Andriy S. Kozlov V Victoria Salem A Andrew S. Cowburn (Department of Medicine Imperial College London London UK) F Firat Güder (Department of Bioengineering, Royal School of Mines, Imperial College London)

Abstract

ABSTRACT The outstanding barrier properties of skin make it difficult to obtain reliable physiological information (especially chemical) without the use of implantable bioelectronic sensing devices to directly access the internal biology. The clinical utility of bioelectronic implants, however, hinges on a key geometrical optimization problem: devices must scale down in size to reduce surgical invasiveness while also creating enough space to integrate electronics for wireless power delivery, data exchange, and electrical/electrochemical monitoring. Here, we present a minimally invasive bioelectronic implant with a transient geometry that can be inserted subcutaneously and measures important markers, such as pH, temperature, cardiac and respiratory activity, and lithium dynamics, an important element for medical applications. To produce this new class of minimally invasive and foldable implantable sensors, we developed a fabrication method that works with highly flexible substrates to enable multiple‐fold miniaturization during implantation. After implantation, the implant autonomously unfolds back to its planar form for continuous wireless operation. We demonstrate proof‐of‐concept for the key concepts concerning implantation, operation, and removal through extensive in vitro, ex vivo, and in vivo animal experiments. Ultimately, our approach could provide multiplexed monitoring using quick and suture‐free insertion procedures, which may provide a unique advantage in the transition toward personalized healthcare.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 22, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (14)

S

Selin Olenik

Department of Bioengineering, Royal School of Mines, Imperial College London

J

John D. Goodwin

Department of Bioengineering Imperial College London London UK

A

Atharv Naik

Department of Bioengineering Imperial College London London UK

P

Philip Coatsworth

Department of Bioengineering Imperial College London London UK

I

Ioi Chit Cheung

Department of Bioengineering Imperial College London London UK

F

Farbod Amirghasemi

Alfred E. Mann Department of Biomedical Engineering University of Southern California Los Angeles California USA

A

Anies Sohi

Department of Medicine Imperial College London London UK

E

Ehsan Abedi

Department of Bioengineering Imperial College London London UK

T

Tayeb Tadlaoui

Department of Bioengineering, Royal School of Mines, Imperial College London

M

Maral P. S. Mousavi

Alfred E. Mann Department of Biomedical Engineering University of Southern California Los Angeles California USA

A

Andriy S. Kozlov

V

Victoria Salem

A

Andrew S. Cowburn

Department of Medicine Imperial College London London UK

F

Firat Güder

Department of Bioengineering, Royal School of Mines, Imperial College London