Back to Search Start Over

Micelle-enabled self-assembly of porous and monolithic carbon membranes for bioelectronic interfaces

Authors :
Naomi Yamamoto
Menahem Y. Rotenberg
Yin Fang
Benayahu Elbaz
Bozhi Tian
Yuanwen Jiang
Lingyuan Meng
Aleksander Prominski
Hector Acaron Ledesma
Jiping Yue
Wei Wei
Yingying Lv
Junyoung Jeong
Erik N. Schaumann
Source :
Nature nanotechnology
Publication Year :
2020
Publisher :
Springer Science and Business Media LLC, 2020.

Abstract

Real-world bioelectronics applications, including drug delivery systems, biosensing, and electrical modulation of tissues and organs, largely require biointerfaces at the macroscopic level. However, traditional macroscale bioelectronic electrodes usually exhibit invasive or power-inefficient architectures, inability to form uniform and subcellular interfaces, or faradaic reactions at electrode surfaces. Here, we develop a micelle-enabled self-assembly approach for a binder-free and carbon-based monolithic device, aimed at large-scale bioelectronic interfaces. The device incorporates a multiscale porous material architecture, an interdigitated microelectrode layout, and a supercapacitor-like performance. In cell training processes, we use the device to modulate the contraction rate of primary cardiomyocytes at the subcellular level to target frequency in vitro. We also achieve capacitive control of the electrophysiology in isolated hearts, retinal tissues, and sciatic nerves, as well as bioelectronic cardiac sensing. Our results support the exploration of device platforms already used in energy research to identify new opportunities in bioelectronics.

Details

ISSN :
17483395 and 17483387
Volume :
16
Database :
OpenAIRE
Journal :
Nature Nanotechnology
Accession number :
edsair.doi.dedup.....80e1c57554ef0a9f9317534be89b2911
Full Text :
https://doi.org/10.1038/s41565-020-00805-z