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Design and Ex Vivo Experimental Validations of the CMOS 256-Pixel Photovoltaic-Powered Subretinal Prosthetic Chip with Auto-Adaptive Pixels for a Wide Image Illuminance Range
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Design and Ex Vivo Experimental Validations of the CMOS 256-Pixel Photovoltaic-Powered Subretinal Prosthetic Chip with Auto-Adaptive Pixels for a Wide Image Illuminance Range

C.-Y. Wu, H.-H. Liu, P.-H. Chen, C.-C. Chiao, F.-L. Chu, Y.-C. Tsai, P.-C. Chen, W.-Y. Tsai, Y.-H. Wu 和 C.-K. Tseng
IEEE Transactions on Biomedical Engineering, 卷.69(1), 頁碼.482-493
2022
Web of Science ID: WOS:000733943200052

摘要

Auto-adaptive pixels CMOS image sensor divisional power supply scheme subretinal prostheses Electrodes Prostheses and Implants CMOS integrated circuits Integrated circuit design Pixels Prosthetics water Automatic adaptation Constant-current generator Electrical measurement Experimental validations Measured residuals Stimulation frequencies Stimulation pattern Subretinal prosthesis Article automation controlled study electric potential equipment design ex vivo study human human cell human tissue illumination infrared radiation light adaptation luminance Michaelis Menten kinetics photoreceptor power supply reaction time retina ganglion cell slope factor stimulation electrode prostheses and orthoses Lighting
Objective: To design and verify a CMOS 256-pixel photovoltaic-powered subretinal prosthetic chip with key advances over the state-of-the-art. The three key advances are: 1) automatic adaptation to changing background illuminance levels; 2) increase of injection charges with reduced crosstalk leakage charges, enhanced charge balance, and low process variations; 3) stable stimulation voltage to keep the safety of water window. Methods: The novel auto-adaptive pixel circuit is designed to realize the Michealis - Menten equation (MME) so that the automatic adaptation to changing background illuminance can be achieved. Both improved biphasic constant current stimulator (CCS) via bi-directional shared electrodes (BDSEs) with optimized stimulation pattern and improved constant current generator/ring oscillator are designed to achieve the above second advance on injection charges. The closed-loop charge pump is designed to achieve the third advance. Results: The measured dynamic range of image illuminance is increased to 54.7 dB. The maximum stimulation charge is 8.89nC. The measured stimulation current mismatch is 1.7% and the measured residual charge is 0.150 nC. The measured variations of stimulation frequencies are from 26 Hz to 29.7 Hz. The results of ex vivo tests have shown that the proposed subretinal chip can evoke spiking responses of RGCs. The function of adaptation process to background illuminance has also been verified. Conclusion and Significance: Through both electrical measurement and ex vivo tests, the functions of designed subretinal chip have been validated successfully. It is shown that the proposed subretinal chip is a promising solution for subretinal prostheses. © 2012 IEEE.

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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85112614832&doi=10.1109%2fTBME.2021.3098734&partnerID=40&md5=a0580eeb03ef59bf121595cf9db3c059檢視

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合作類型
機構合作
引用書目主題
1 Clinical & Life Sciences
1.82 Gait & Posture
1.82.1144 Neural Interfaces
Web Of Science研究領域
Engineering, Biomedical
ESI研究領域
Engineering

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