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3D Diamond Electrode Array for High-Acuity Stimulation in Neural Tissue

journal contribution
posted on 2024-11-02, 13:40 authored by Melanie Stamp, Wei Tong, Kumaravelu Ganesan, Steven Prawer, Michael Ibbotson, David GarrettDavid Garrett
Innovations in micro-and nanofabrication technologies enable the manufacture of multielectrode arrays for use in neuromodulation and neural recording. Multielectrode arrays make possible medical implants such as pacemakers, deep-brain stimulators, or visual and hearing aids, to treat numerous neural disorders. An optimal neural interface requires a high density of electrodes to precisely record from and stimulate the nervous system while minimizing the overall size of the array. For example, people with retinal degenerative diseases can benefit from retinal prostheses implanted inside the eye. However, at present the visual acuity provided by such implants is well below the threshold for functional vision, mainly due to the limited spatial resolution. In this work, we present a design of 3D nanostructured conductive diamond electrodes, integrated within a polycrystalline diamond housing, offering a high electrode density and count, which simultaneously satisfies spatial resolution and biocompatibility goals. The array is composed of height adjustable pillar electrodes that are 80 μm in diameter and separated by 150 μm. A holistic characterization of the electrodes was performed and the device tested for stimulation performance in a whole-mounted retina. Electrochemical testing showed impedance of 20 kω and a wide water window of 2.47 V. The pillar structure allows the distance between the electrodes and the retinal ganglion cells to be reduced which is key to more confined stimulation at lower current levels, leading to potentially higher-acuity stimulation without damaging retinal tissue.

History

Related Materials

  1. 1.
    DOI - Is published in 10.1021/acsabm.9b01165
  2. 2.
    ISSN - Is published in 25766422

Journal

ACS Applied Bio Materials

Volume

3

Issue

3

Start page

1544

End page

1552

Total pages

9

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2020 American Chemical Society.

Former Identifier

2006100290

Esploro creation date

2020-09-08

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