Key points are not available for this paper at this time.
One of the critical factors determining the performance of neural interfaces is the electrode material used to establish electrical communication with the neural tissue, which needs to meet strict electrical, electrochemical, mechanical, biological and microfabrication compatibility requirements. This work presents a nanoporous graphene-based thin-film technology and its engineering to form flexible neural interfaces. The developed technology allows the fabrication of small microelectrodes (25 µm diameter) while achieving low impedance (∼25 kΩ) and high charge injection (3-5 mC cm-2). In vivo brain recording performance assessed in rodents reveals high-fidelity recordings (signal-to-noise ratio >10 dB for local field potentials), while stimulation performance assessed with an intrafascicular implant demonstrates low current thresholds (0.8) for activating subsets of axons within the rat sciatic nerve innervating tibialis anterior and plantar interosseous muscles. Furthermore, the tissue biocompatibility of the devices was validated by chronic epicortical (12 week) and intraneural (8 week) implantation. This work describes a graphene-based thin-film microelectrode technology and demonstrates its potential for high-precision and high-resolution neural interfacing.
Building similarity graph...
Analyzing shared references across papers
Loading...
Damià Viana
Integrated Optoelectronics (Norway)
Steven T. Walston
University of Southern California
Eduard Masvidal‐Codina
Universitat Autònoma de Barcelona
Nature Nanotechnology
Inserm
Universitat de Barcelona
Universitat Autònoma de Barcelona
Building similarity graph...
Analyzing shared references across papers
Loading...
Viana et al. (Thu,) studied this question.
synapsesocial.com/papers/69da4e7194a959ed41a3c547 — DOI: https://doi.org/10.1038/s41565-023-01570-5