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Subthreshold Electrical Stimulation for Controlling Protein-Mediated Impedance Increases in Platinum Cochlear Electrode.

, , , , and . IEEE Trans. Biomed. Eng., 67 (12): 3510-3520 (2020)

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Living electrodes: Tissue engineering the neural interface., , , , , , and . EMBC, page 6957-6960. IEEE, (2013)Validation of a platinum bioelectrode model for preclinical electrical and biological performance evaluation., , , and . EMBC, page 1-4. IEEE, (2023)Electromechanical Stability and Transmission Behavior of Transparent Conductive Films for Biomedical Optoelectronic Devices., , , , , and . EMBC, page 5-8. IEEE, (2022)Effect of Hydrogel-based Model Fibrosis on Electrical Properties of Bioelectrodes., , , and . EMBC, page 1-4. IEEE, (2023)Subthreshold Electrical Stimulation for Controlling Protein-Mediated Impedance Increases in Platinum Cochlear Electrode., , , , and . IEEE Trans. Biomed. Eng., 67 (12): 3510-3520 (2020)Impedance Properties of Multi-Optrode Biopotential Sensing Arrays., , , , , , , , and . IEEE Trans. Biomed. Eng., 69 (5): 1674-1684 (2022)A Comparative Assessment of Evoked Compound Action Potentials Measured by Optrode and Conventional Bioamplifier Systems., , , , , and . NER, page 1-4. IEEE, (2023)In vitro biological assessment of electrode materials for neural interfaces., , , , and . NER, page 450-453. IEEE, (2015)Producing 3D neuronal networks in hydrogels for living bionic device interfaces., , , , , and . EMBC, page 2600-2603. IEEE, (2015)Freestanding, soft bioelectronics., , , , , and . NER, page 607-610. IEEE, (2015)