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Architecture tradeoffs in high-density microstimulators for retinal prosthesis.

, , , , and . IEEE Trans. Circuits Syst. I Regul. Pap., 52-I (12): 2629-2641 (2005)

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Power supply topologies for biphasic stimulation in inductively powered implants., , , , and . ISCAS (3), page 2743-2746. IEEE, (2005)Fully integrated wide dynamic range optical receiver for near infrared spectroscopy., , , , and . Microelectron. J., (2019)A 44Gbit/s Wide-Dynamic Range and High-Linearity Transimpedance Amplifier in 130nm BiCMOS Technology., , , and . IEICE Trans. Fundam. Electron. Commun. Comput. Sci., 101-A (2): 438-440 (2018)Low-Power, High-Data Rate 915 MHz Transceiver with Fully Passive Wake-Up Receiver for Biomedical Implants., , , and . ICUWB, page 1-4. IEEE, (2015)A 100μW AC-DC Boost Converter for Electromagnetic Energy Harvesting With 0.2 VPeak Self-starting Voltage and 85% Efficiency., , , , and . APCCAS, page 493-496. IEEE, (2018)A low-power high-sensitivity analog front-end for PPG sensor., , and . EMBC, page 861-864. IEEE, (2017)Analysis of Dual Band Power and Data Telemetry for Biomedical Implants., , , and . IEEE Trans. Biomed. Circuits Syst., 6 (3): 208-215 (2012)Guest Editorial Microwatts Wireless Technologies., , and . IEEE J. Emerg. Sel. Topics Circuits Syst., 4 (3): 245-247 (2014)An efficient inductive power link design for retinal prosthesis., , , , , and . ISCAS (4), page 41-44. IEEE, (2004)A closed loop transcutaneous power transfer system for implantable devices with enhanced stability., , , , , , , and . ISCAS (4), page 17-20. IEEE, (2004)