Artificial Cochlear Sensory Epithelium with Functions of Outer Hair Cells Mimicked Using Feedback Electrical Stimuli
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Satoyuki Kawano | Tetsuro Tsuji | S. Kawano | Tetsuro Tsuji | Asuka Nakayama | Hiroki Yamazaki | Hiroki Yamazaki | Asuka Nakayama
[1] Yuan Luo,et al. Design and analysis of a MEMS-based bifurcate-shape piezoelectric energy harvester , 2016 .
[2] G M Clark,et al. A multiple electrode cochlear implant , 1977, Journal of Laryngology and Otology.
[3] John A Rogers,et al. Conformal piezoelectric energy harvesting and storage from motions of the heart, lung, and diaphragm , 2014, Proceedings of the National Academy of Sciences.
[4] Jeong Hun Jang,et al. MEMS flexible artificial basilar membrane fabricated from piezoelectric aluminum nitride on an SU-8 substrate , 2017 .
[5] Thomas Gold,et al. Hearing. II. The Physical Basis of the Action of the Cochlea , 1948, Proceedings of the Royal Society of London. Series B - Biological Sciences.
[6] Hongsoo Choi,et al. Biomimetic Artificial Basilar Membranes for Next‐Generation Cochlear Implants , 2017, Advanced healthcare materials.
[7] K. D. Karavitaki,et al. From Biological Cilia to Artificial Flow Sensors: Biomimetic Soft Polymer Nanosensors with High Sensing Performance , 2016, Scientific Reports.
[8] Satoyuki Kawano,et al. Development of piezoelectric acoustic sensor with frequency selectivity for artificial cochlea , 2010 .
[9] Satoyuki Kawano,et al. Development of an electrode for the artificial cochlear sensory epithelium , 2015, Hearing Research.
[10] A. Chandrakasan,et al. Energy extraction from the biologic battery in the inner ear , 2012, Nature Biotechnology.
[11] Daphne Manoussaki,et al. The influence of cochlear shape on low-frequency hearing , 2008, Proceedings of the National Academy of Sciences.
[12] Satoyuki Kawano,et al. Culturing Neurons on MEMS Fabricated P(VDF-TrFE) Films for Implantable Artificial Cochlea * , 2010 .
[13] Shin Hur,et al. Flexible Inorganic Piezoelectric Acoustic Nanosensors for Biomimetic Artificial Hair Cells , 2014 .
[14] Hongsoo Choi,et al. MEMS piezoelectric artificial basilar membrane with passive frequency selectivity for short pulse width signal modulation , 2013 .
[15] L. Robles,et al. Mechanics of the mammalian cochlea. , 2001, Physiological reviews.
[16] F. Zeng. Trends in Cochlear Implants , 2004, Trends in amplification.
[17] Jin-Ho Cho,et al. A microelectromechanical system artificial basilar membrane based on a piezoelectric cantilever array and its characterization using an animal model , 2015, Scientific Reports.
[18] E. Olson,et al. Detection of cochlear amplification and its activation. , 2013, Biophysical journal.
[19] Takamasa Yoshida,et al. The mechanism underlying maintenance of the endocochlear potential by the K+ transport system in fibrocytes of the inner ear , 2013, The Journal of physiology.
[20] Frank Jülicher,et al. Active traveling wave in the cochlea. , 2003, Physical review letters.
[21] D. T. Kemp,et al. Evidence of mechanical nonlinearity and frequency selective wave amplification in the cochlea , 2004, Archives of oto-rhino-laryngology.
[22] Satoyuki Kawano,et al. Wide-range frequency selectivity in an acoustic sensor fabricated using a microbeam array with non-uniform thickness , 2013 .
[23] A. Hudspeth,et al. The physics of hearing: fluid mechanics and the active process of the inner ear , 2014, Reports on progress in physics. Physical Society.
[24] J. T. Corwin,et al. Regenerative proliferation in inner ear sensory epithelia from adult guinea pigs and humans. , 1993, Science.
[25] Hongsoo Choi,et al. Mechanical frequency selectivity of an artificial basilar membrane using a beam array with narrow supports , 2013 .
[26] I. Russell,et al. The location of the cochlear amplifier: spatial representation of a single tone on the guinea pig basilar membrane. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[27] T. Tateno,et al. A hardware model of the auditory periphery to transduce acoustic signals into neural activity , 2013, Front. Neuroeng..
[28] Pablo A. Tarazaga,et al. Mimicking the cochlear amplifier in a cantilever beam using nonlinear velocity feedback control , 2014 .
[29] T. Gold,et al. Hearing. I. The Cochlea as a Frequency Analyzer , 1948, Proceedings of the Royal Society of London. Series B - Biological Sciences.
[30] W. S. Rhode. Observations of the vibration of the basilar membrane in squirrel monkeys using the Mössbauer technique. , 1971, The Journal of the Acoustical Society of America.
[31] Satoyuki Kawano,et al. Experimental and Analytical Study Approach of Artificial Basilar Membrane Prototype (ABMP) , 2013 .
[32] H. Wada,et al. Piezoelectric materials mimic the function of the cochlear sensory epithelium , 2011, Proceedings of the National Academy of Sciences.
[33] Richard S. Chadwick,et al. Effects of Geometry on Fluid Loading in a Coiled Cochlea , 2000, SIAM J. Appl. Math..
[34] Satoyuki Kawano,et al. Electrically Evoked Auditory Brainstem Response by Using Bionic Auditory Membrane in Guinea Pigs , 2013 .
[35] Sang Choon Ko,et al. Micromachined piezoelectric membrane acoustic device , 2003 .
[36] Satoyuki Kawano,et al. Experimental Study of Vibration of Prototype Auditory Membrane , 2014 .
[37] Toshihiro Suzuki,et al. Computational model of a circulation current that controls electrochemical properties in the mammalian cochlea , 2012, Proceedings of the National Academy of Sciences.
[38] P. Coleman,et al. Experiments in hearing , 1961 .
[39] Saumil N. Merchant,et al. Schuknecht's pathology of the ear , 2010 .