Stretchable Tissue‐Like Gold Nanowire Composites with Long‐Term Stability for Neural Interfaces

Author:

Seufert Laura1,Elmahmoudy Mohammed1,Theunis Charlotte1,Lienemann Samuel1,Li Yuyang1,Mohammadi Mohsen1,Boda Ulrika2,Carnicer‐Lombarte Alejandro3,Kroon Renee1,Persson Per O.Å.4,Rahmanudin Aiman1,Donahue Mary J.1,Farnebo Simon56,Tybrandt Klas1ORCID

Affiliation:

1. Laboratory of Organic Electronics Department of Science and Technology Linköping University Norrköping 602 21 Sweden

2. RISE Research Institutes of Sweden Digital Systems Smart Hardware Printed Bio‐ and Organic Electronics Södra Grytsgatan 4 Norrköping SE‐602 33 Sweden

3. Electrical Engineering Division Department of Engineering University of Cambridge Cambridge CB3 0FA UK

4. Department of Physics Chemistry and Biology Linköping University Linköping 581 83 Sweden

5. Department of Hand Surgery Plastic Surgery and Burns Linköping University Hospital Linköping 581 85 Sweden

6. Department of Biomedical and Clinical Sciences Linköping University Linköping 581 85 Sweden

Abstract

AbstractSoft and stretchable nanocomposites can match the mechanical properties of neural tissue, thereby minimizing foreign body reactions to provide optimal stimulation and recording specificity. Soft materials for neural interfaces should simultaneously fulfill a wide range of requirements, including low Young's modulus (<<1 MPa), stretchability (≥30%), high conductivity (>> 1000 S cm−1), biocompatibility, and chronic stability (>> 1 year). Current nanocomposites do not fulfill the above requirements, in particular not the combination of softness and high conductivity. Here, this challenge is addressed by developing a scalable and robust synthesis route based on polymeric reducing agents for smooth, high‐aspect ratio gold nanowires (AuNWs) of controllable dimensions with excellent biocompatibility. AuNW‐silicone composites show outstanding performance with nerve‐like softness (250 kPa), high conductivity (16 000 S cm−1), and reversible stretchability. Soft multielectrode cuffs based on the composite achieve selective functional stimulation, recordings of sensory stimuli in rat sciatic nerves, and show an accelerated lifetime stability of >3 years. The scalable synthesis method provides a chemically stable alternative to the widely used AgNWs, thereby enabling new applications within electronics, biomedical devices, and electrochemistry.

Funder

Vetenskapsrådet

Knut och Alice Wallenbergs Stiftelse

Vinnova

H2020 European Research Council

Stiftelsen för Strategisk Forskning

Publisher

Wiley

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