Electronic Visual Prostheses
Author:
Publisher
Springer Science and Business Media LLC
Link
https://link.springer.com/content/pdf/10.1007/s11055-024-01597-8.pdf
Reference54 articles.
1. Arens-Arad, T., Farah, N., Lender, R., et al., “Cortical interactions between prosthetic and natural vision,” Curr. Biol., 30, No. 1, 176–182 e172 (2020), https://doi.org/10.1016/j.cub.2019.11.028.
2. Asghar, S. A., Pal, P., Nazeer, K., and Mahadevappa, M., “A computational study of graphene as a prospective material for microelectrodes in retinal prosthesis and electric crosstalk analysis,” in: Annual International Conference of the IEEE Engineering in Medicine and Biology Society IEEE Engineering in Medicine and Biology Society Annual International Conference 2020 (2020), pp. 2291–2294, https://doi.org/https://doi.org/10.1109/EMBC44109.2020.9176388.
3. Caspi, A., Barry, M. P., Patel, U. K., et al., “Eye movements and the perceived location of phosphenes generated by intracranial primary visual cortex stimulation in the blind,” Brain Stimul., 14, No. 4, 851–860 (2021), https://doi.org/https://doi.org/10.1016/j.brs.2021.04.019.
4. Caspi, A., Dorn, J. D., McClure, K. H., et al., “Feasibility study of a retinal prosthesis: spatial vision with a 16-electrode implant,” Arch. Ophthalmol., 127, No. 4, 398–401 (2009), https://doi.org/https://doi.org/10.1001/archophthalmol.2009.20.
5. Choi, C., Choi, M. K., Liu, S., et al., “Human eye-inspired soft optoelectronic device using high-density MoS(2)-graphene curved image sensor array,” Nat. Commun., 8, No. 1, 1664 (2017), https://doi.org/10.1038/s41467-017-01824-6.
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