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Published on: January 28, 2016
Photovoltaic Stimulation of Mouse and Pig Retina With Pyrolytic Carbon Microelectrodes Integrated on High-Density
Akihiro Matsumoto1, Pratik Kusumanchi2, Jesper Guldsmed Madsen3
1Department of Gene Function and Phenomics, National Institute of Genetics, Mishima, Japan.
Abstract:
In this work, we introduce carbon as a novel electrode material in retinal prosthesis. We fabricate Si-based photovoltaic retinal implants with single p-n junctions in 40 µm and 200 µm pixels and successfully integrate pyrolytic carbon electrodes. Single pixels provide an open-circuit voltage of up to 0.5 V under near-infrared (NIR) illumination, demonstrating the functionality of the miniaturized solar cells despite the high thermal budget of the pyrolysis process. In electrophysiological ex vivo experiments with mouse retinal tissue, the intra- and extracellular spike activity significantly increased upon NIR-induced photovoltaic stimulation with the retinal implant compared to spontaneous activity, while spike amplitudes were comparable to the natural response to white light. The absence of action potentials after subsequent blocking of Na channels with tetrodotoxin confirmed the biological nature of the signals recorded during stimulation. Furthermore, spike amplitudes of evoked potentials were slightly higher for carbon electrodes compared to Au counterparts. Photovoltaic retinal implants with 3D carbon pillar electrodes were explored for ex vivo stimulation of porcine retinal tissue, confirming their ability to evoke action potentials in retinal neurons. The results demonstrate the potential of miniaturized photovoltaic pixels with 3D pyrolytic carbon electrodes.

