Surface‐Grafted Biocompatible Polymer Conductors for Stable and Compliant Electrodes for Brain Interfaces

Author:

Blau Rachel1ORCID,Russman Samantha M.2,Qie Yi1,Shipley Wade3,Lim Allison1,Chen Alexander X.1,Nyayachavadi Audithya1,Ah Louis1,Abdal Abdulhameed4,Esparza Guillermo L.1,Edmunds Samuel J.5,Vatsyayan Ritwik5,Dunfield Sean P.1,Halder Moumita1,Jokerst Jesse V.1,Fenning David P.1,Tao Andrea R.13,Dayeh Shadi A.25,Lipomi Darren J.1ORCID

Affiliation:

1. Aiiso Yufeng Li Family Department of Chemical and Nano Engineering University of California, San Diego 9500 Gilman Drive La Jolla CA 92093‐0448 USA

2. Department of Bioengineering University of California, San Diego 9500 Gilman Drive La Jolla CA 92093‐0448 USA

3. Materials Science and Engineering Program University of California, San Diego 9500 Gilman Drive La Jolla CA 92093‐0418 USA

4. Department of Mechanical and Aerospace Engineering University of California, San Diego 9500 Gilman Drive La Jolla CA 92093‐0448 USA

5. Department of Electrical and Computer Engineering University of California, San Diego 9500 Gilman Drive La Jolla CA 92093‐0448 USA

Abstract

AbstractDurable and conductive interfaces that enable chronic and high‐resolution recording of neural activity are essential for understanding and treating neurodegenerative disorders. These chronic implants require long‐term stability and small contact areas. Consequently, they are often coated with a blend of conductive polymers and are crosslinked to enhance durability despite the potentially deleterious effect of crosslinking on the mechanical and electrical properties. Here the grafting of the poly(3,4 ethylenedioxythiophene) scaffold, poly(styrenesulfonate)‐b‐poly(poly(ethylene glycol) methyl ether methacrylate block copolymer brush to gold, in a controlled and tunable manner, by surface‐initiated atom‐transfer radical polymerization (SI‐ATRP) is described. This “block‐brush” provides high volumetric capacitance (120 F cm─3), strong adhesion to the metal (4 h ultrasonication), improved surface hydrophilicity, and stability against 10 000 charge–discharge voltage sweeps on a multiarray neural electrode. In addition, the block‐brush film showed 33% improved stability against current pulsing. This approach can open numerous avenues for exploring specialized polymer brushes for bioelectronics research and application.

Funder

Air Force Office of Scientific Research

BRAIN Initiative

National Institute of Biomedical Imaging and Bioengineering

Natural Sciences and Engineering Research Council of Canada

Kuwait Foundation for the Advancement of Sciences

UC Irvine Materials Research Institute

Alfred P. Sloan Foundation

H2020 Marie Skłodowska-Curie Actions

National Science Foundation

Publisher

Wiley

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