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A 100-Channel Hermetically Sealed Implantable Device for Chronic Wireless Neurosensing Applications.

, , , , and . IEEE Trans. Biomed. Circuits Syst., 7 (2): 115-128 (2013)

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Multi-coil High Efficiency Wireless Charger System for Hermetically Sealed Biomedical Implants., and . BioCAS, page 1-4. IEEE, (2018)Optoelectronic devices for optogenetics: From rodents to non-human primates., , , and . BioCAS, page 1-4. IEEE, (2015)Home Use of a Percutaneous Wireless Intracortical Brain-Computer Interface by Individuals With Tetraplegia., , , , , , , , , and 6 other author(s). IEEE Trans. Biomed. Eng., 68 (7): 2313-2325 (2021)A 100-channel hermetically sealed implantable device for wireless neurosensing applications., , , , and . ISCAS, page 2629-2632. IEEE, (2012)Demo: A Software-Defined Radio for Wireless Brain Implants Network., , , , , , , , and . MobiCom, page 852-854. ACM, (2018)Improving Wireless Power Transfer Efficiency for Distributed Brain Implants using Auto-Tune OVP., , , , , , , , , and 3 other author(s). BioCAS, page 1-5. IEEE, (2023)Polymeric packaging for fully implantable wireless neural microsensors., , , , , and . EMBC, page 743-746. IEEE, (2012)Approaches to optical neuromodulation from rodents to non-human primates by integrated optoelectronic devices., , , , , , , , , and 2 other author(s). EMBC, page 7525-7528. IEEE, (2011)Approaches to large scale neural recording by chronic implants for mobile BCIs.. BCI, page 1-2. IEEE, (2018)A mobile embedded platform for high performance neural signal computation and communication., , , , and . BioCAS, page 1-4. IEEE, (2015)