Towards high-resolution retinal prostheses with direct optical addressing and inductive telemetry
暂无分享,去创建一个
Gert Cauwenberghs | Sohmyung Ha | Yu-Hwa Lo | Yi Jing | William R Freeman | Abraham Akinin | Massoud L Khraiche | Samir Damle | Yanjin Kuang | Sue Bauchner | Gabriel A Silva | G. Cauwenberghs | W. Freeman | Y. Lo | Samir Damle | G. Silva | Abraham Akinin | Yi Jing | S. Ha | M. Khraiche | Yanjin Kuang | Sue Bauchner
[1] Anita Mahadevan-Jansen,et al. Application of infrared light for in vivo neural stimulation. , 2005, Journal of biomedical optics.
[2] John S. Pollack,et al. Subretinal Artificial Silicon Retina Microchip for the Treatment of Retinitis Pigmentosa: 3 1/2 Year Update , 2004 .
[3] Richard A. Normann,et al. Simulation of a phosphene-based visual field: Visual acuity in a pixelized vision system , 2006, Annals of Biomedical Engineering.
[4] B. Rappaz,et al. Simulation of artificial vision: II. Eccentric reading of full-page text and the learning of this task , 2004, Vision Research.
[5] T Fujikado,et al. Laboratory investigation of microelectronics-based stimulators for large-scale suprachoroidal transretinal stimulation (STS) , 2007, Journal of neural engineering.
[6] David Tsai,et al. Current steering in retinal stimulation via a quasimonopolar stimulation paradigm. , 2013, Investigative ophthalmology & visual science.
[7] J. Weiland,et al. Retinal Prosthesis , 2014, IEEE Transactions on Biomedical Engineering.
[8] A. Y. Chow,et al. The artificial silicon retina microchip for the treatment of vision loss from retinitis pigmentosa. , 2004, Archives of ophthalmology.
[9] Guillaume Charvet,et al. WIMAGINE: Wireless 64-Channel ECoG Recording Implant for Long Term Clinical Applications , 2015, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[10] Jun Ohta,et al. Development and in vivo Demonstration of CMOS-Based Multichip Retinal Stimulator With Simultaneous Multisite Stimulation Capability , 2010, IEEE Transactions on Biomedical Circuits and Systems.
[11] B. Sellhaus,et al. Implantation and explantation of a wireless epiretinal retina implant device: observations during the EPIRET3 prospective clinical trial. , 2009, Investigative ophthalmology & visual science.
[12] Daniel Palanker,et al. Optimization of return electrodes in neurostimulating arrays , 2016, Journal of neural engineering.
[13] M. Koyanagi,et al. Three-Dimensionally Stacked Analog Retinal Prosthesis Chip , 2004 .
[14] Daniel Palanker,et al. Design of a high-resolution optoelectronic retinal prosthesis , 2005, Journal of neural engineering.
[15] Zhong Lin Wang,et al. Fiber-based hybrid nanogenerators for/as self-powered systems in biological liquid. , 2011, Angewandte Chemie.
[16] J. Weiland,et al. Visual performance using a retinal prosthesis in three subjects with retinitis pigmentosa. , 2007, American journal of ophthalmology.
[17] H. Kolb,et al. Midget ganglion cells of the parafovea of the human retina: A Study by electron microscopy and serial section reconstructions , 1991, The Journal of comparative neurology.
[18] S. J. Kim,et al. A Suprachoroidal Electrical Retinal Stimulator Design for Long-Term Animal Experiments and In Vivo Assessment of Its Feasibility and Biocompatibility in Rabbits , 2008, Journal of biomedicine & biotechnology.
[19] Gert Cauwenberghs,et al. Visual evoked potential characterization of rabbit animal model for retinal prosthesis research , 2013, 2013 35th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[20] Yuchun Zhou,et al. Bias dependence of sub-bandgap light detection for core-shell silicon nanowires. , 2012, Nano letters.
[21] J. Barrett,et al. Optogenetic approaches to retinal prosthesis , 2014, Visual Neuroscience.
[22] N H Lovell,et al. Electric crosstalk impairs spatial resolution of multi-electrode arrays in retinal implants , 2011, Journal of neural engineering.
[23] Charles M. Lieber,et al. Functional nanoscale electronic devices assembled using silicon nanowire building blocks. , 2001, Science.
[24] A. Dizhoor,et al. Ectopic Expression of a Microbial-Type Rhodopsin Restores Visual Responses in Mice with Photoreceptor Degeneration , 2006, Neuron.
[25] Thomas J. Liesegang,et al. The epidemiology of retinitis pigmentosa in Denmark. Haim M.∗ Acta Ophthalmol Scand 2002;80:S233:1–34. , 2002 .
[26] Armand R. Tanguay,et al. An Intraocular Camera for Retinal Prostheses: Restoring Sight to the Blind , 2010 .
[27] Robert J. Greenberg,et al. The Argus® II retinal prosthesis system: An overview , 2013, 2013 IEEE International Conference on Multimedia and Expo Workshops (ICMEW).
[28] Joseph F. Rizzo,et al. Development and Implantation of a Minimally Invasive Wireless Subretinal Neurostimulator , 2009, IEEE Transactions on Biomedical Engineering.
[29] François Léonard,et al. Large area, dense silicon nanowire array chemical sensors , 2006 .
[30] L. E. Hallum,et al. A quantitative analysis of head movement behaviour during visual acuity assessment under prosthetic vision simulation , 2007, Journal of neural engineering.
[31] T. Wachtler,et al. Stimulation with a wireless intraocular epiretinal implant elicits visual percepts in blind humans. , 2011, Investigative ophthalmology & visual science.
[32] H. Kishima,et al. Testing of semichronically implanted retinal prosthesis by suprachoroidal-transretinal stimulation in patients with retinitis pigmentosa. , 2011, Investigative ophthalmology & visual science.
[33] Keith Mathieson,et al. Retinal Representation of the Elementary Visual Signal , 2014, Neuron.
[34] B. Wilhelm,et al. Subretinal Visual Implant Alpha IMS – Clinical trial interim report , 2015, Vision Research.
[35] K. Mathieson,et al. Cortical responses elicited by photovoltaic subretinal prostheses exhibit similarities to visually evoked potentials , 2013, Nature Communications.
[36] R. Shepherd,et al. Electrical stimulation of the auditory nerve: direct current measurement in vivo , 1999, IEEE Transactions on Biomedical Engineering.
[37] Maurits Ortmanns,et al. Charge Balancing in Functional Electrical Stimulators: A Comparative Study , 2007, 2007 IEEE International Symposium on Circuits and Systems.
[38] R. Hornig,et al. The IMI Retinal Implant System , 2007 .
[39] P. Jong. Prevalence of age-related macular degeneration in the United States. , 2004 .
[40] Hugh J. McDermott,et al. Factors affecting perceptual thresholds in a suprachoroidal retinal prosthesis. , 2014, Investigative ophthalmology & visual science.
[41] Yu Chen,et al. CMOS-Compatible Silicon-Nanowire-Based Coulter Counter for Cell Enumeration , 2016, IEEE Transactions on Biomedical Engineering.
[42] Daniel K Freeman,et al. Calcium channel dynamics limit synaptic release in response to prosthetic stimulation with sinusoidal waveforms , 2011, Journal of neural engineering.
[43] Gert Cauwenberghs,et al. Direct inductive stimulation for energy-efficient wireless neural interfaces , 2012, 2012 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[44] Anne Vanhoestenberghe,et al. Integrated electrode and high density feedthrough system for chip-scale implantable devices. , 2013, Biomaterials.
[45] Jong-Mo Seo,et al. Light-Controlled Biphasic Current Stimulator IC Using CMOS Image Sensors for High-Resolution Retinal Prosthesis and In Vitro Experimental Results With rd1 Mouse , 2015, IEEE Transactions on Biomedical Engineering.
[46] Zhong Lin Wang,et al. High-output nanogenerator by rational unipolar assembly of conical nanowires and its application for driving a small liquid crystal display. , 2010, Nano letters.
[47] Nigel H Lovell,et al. Towards an assistive peripheral visual prosthesis for long-term treatment of retinitis pigmentosa: evaluating mobility performance in immersive simulations , 2015, Journal of neural engineering.
[48] Chris E. Williams,et al. First-in-Human Trial of a Novel Suprachoroidal Retinal Prosthesis , 2014, PloS one.
[49] James R. Anderson,et al. Retinal connectomics: Towards complete, accurate networks , 2013, Progress in Retinal and Eye Research.
[50] L.S. Theogarajan. A Low-Power Fully Implantable 15-Channel Retinal Stimulator Chip , 2008, IEEE Journal of Solid-State Circuits.
[51] Ryad Benosman,et al. Neural stimulation for visual rehabilitation: Advances and challenges , 2013, Journal of Physiology-Paris.
[52] T. Tokuda,et al. CMOS-Based Multichip Networked Flexible Retinal Stimulator Designed for Image-Based Retinal Prosthesis , 2009, IEEE Transactions on Electron Devices.
[53] A. Milam,et al. Preservation of the inner retina in retinitis pigmentosa. A morphometric analysis. , 1997, Archives of ophthalmology.
[54] Keiichiro Kagawa,et al. Flexible and extendible neural interface device based on cooperative multi-chip CMOS LSI architecture , 2005 .
[55] C. Curcio,et al. Photoreceptor loss in age-related macular degeneration. , 1996, Investigative ophthalmology & visual science.
[56] Randy J. Nelson,et al. Simple Anatomy of the Retina -- Webvision: The Organization of the Retina and Visual System , 1995 .
[57] Joonsoo Jeong,et al. Advancements in fabrication process of microelectrode array for a retinal prosthesis using Liquid Crystal Polymer (LCP) , 2013, 2013 35th Annual International Conference of the IEEE Engineering in Medicine and Biology Society (EMBC).
[58] Nancy Kelley-Loughnane,et al. Adhesive RFID Sensor Patch for Monitoring of Sweat Electrolytes , 2015, IEEE Transactions on Biomedical Engineering.
[59] Joonsoo Jeong,et al. A Miniaturized, Eye-Conformable, and Long-Term Reliable Retinal Prosthesis Using Monolithic Fabrication of Liquid Crystal Polymer (LCP) , 2015, IEEE Transactions on Biomedical Engineering.
[60] A. Sher,et al. Photovoltaic restoration of sight with high visual acuity , 2015, Nature Medicine.
[61] Sangjin Yoo,et al. Photothermal inhibition of neural activity with near-infrared-sensitive nanotransducers. , 2014, ACS nano.
[62] Mitsumasa Koyanagi,et al. Three-Dimensionally Stacked Analog Retinal Prosthesis Chip , 2003 .
[63] Avi Caspi,et al. Feasibility study of a retinal prosthesis: spatial vision with a 16-electrode implant. , 2009, Archives of ophthalmology.
[64] Jessy D. Dorn,et al. Interim results from the international trial of Second Sight's visual prosthesis. , 2012, Ophthalmology.
[65] C. Lieber,et al. Nanowire Nanosensors for Highly Sensitive and Selective Detection of Biological and Chemical Species , 2001, Science.
[66] Michael S. Landy,et al. Vision research special issue: Sight restoration: Prosthetics, optogenetics and gene therapy , 2015, Vision Research.
[67] Charles M. Lieber,et al. Nanowire nanoelectronics: Building interfaces with tissue and cells at the natural scale of biology , 2013 .
[68] C A Curcio,et al. Preservation of ganglion cell layer neurons in age-related macular degeneration. , 2001, Investigative ophthalmology & visual science.
[69] Chung-Yu Wu,et al. The design of CMOS self-powered 256-pixel implantable chip with on-chip photovoltaic cells and active pixel sensors for subretinal prostheses , 2015, 2015 IEEE Biomedical Circuits and Systems Conference (BioCAS).
[70] Zhong Lin Wang,et al. Enhanced Cu₂S/CdS coaxial nanowire solar cells by piezo-phototronic effect. , 2012, Nano letters.
[71] Eberhart Zrenner,et al. Fighting Blindness with Microelectronics , 2013, Science Translational Medicine.
[72] Shy Shoham,et al. Towards multifocal ultrasonic neural stimulation II: design considerations for an acoustic retinal prosthesis , 2012, Journal of neural engineering.
[73] Joseph F. Rizzo,et al. A Hermetic Wireless Subretinal Neurostimulator for Vision Prostheses , 2011, IEEE Transactions on Biomedical Engineering.
[74] Gert Cauwenberghs,et al. Ultrahigh Photosensitivity Silicon Nanophotonics For Retinal Prosthesis , 2012 .
[75] Takashi Fujikado,et al. Clinical Trial of Chronic Implantation of Suprachoroidal-Transretinal Stimulation System for Retinal Prosthesis , 2012 .
[76] Alfred Stett,et al. Subretinal electronic chips allow blind patients to read letters and combine them to words , 2010, Proceedings of the Royal Society B: Biological Sciences.
[77] Maysam Ghovanloo,et al. EnerCage: A Smart Experimental Arena With Scalable Architecture for Behavioral Experiments , 2014, IEEE Transactions on Biomedical Engineering.
[78] Arup Roy,et al. Factors affecting perceptual thresholds in epiretinal prostheses. , 2008, Investigative ophthalmology & visual science.
[79] David A. Atchison,et al. The eye and visual optical instruments: The eye , 1997 .
[80] R. Masland. The Neuronal Organization of the Retina , 2012, Neuron.
[81] Gislin Dagnelie,et al. Visual perception in a blind subject with a chronic microelectronic retinal prosthesis , 2003, Vision Research.
[82] Liu Liu,et al. A 1600-pixel Subretinal Chip with DC-free Terminals and ±2V Supply Optimized for Long Lifetime and High Stimulation Efficiency , 2008, 2008 IEEE International Solid-State Circuits Conference - Digest of Technical Papers.
[83] Johann W. Kolar,et al. High-Efficiency Transcutaneous Energy Transfer for Implantable Mechanical Heart Support Systems , 2015, IEEE Transactions on Power Electronics.
[84] A. Sher,et al. Photovoltaic retinal prosthesis: implant fabrication and performance , 2012, Journal of neural engineering.
[85] Guang Zhu,et al. Flexible high-output nanogenerator based on lateral ZnO nanowire array. , 2010, Nano letters.
[86] Inbar Brosh,et al. Holographic optogenetic stimulation of patterned neuronal activity for vision restoration , 2013, Nature Communications.
[87] Angelika Braun,et al. Artificial vision with wirelessly powered subretinal electronic implant alpha-IMS , 2013, Proceedings of the Royal Society B: Biological Sciences.
[88] P. Preston,et al. Retinal Neurostimulator for a Multifocal Vision Prosthesis , 2007, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[89] J. Weiland,et al. Retinal prosthesis for the blind. , 2002, Survey of ophthalmology.
[90] Mikhail G. Shapiro,et al. Infrared light excites cells by changing their electrical capacitance , 2012, Nature Communications.
[91] Peidong Yang,et al. Nanowire dye-sensitized solar cells , 2005, Nature materials.
[92] Nikolai Dechev,et al. Wireless Power Transfer for Telemetric Devices With Variable Orientation, for Small Rodent Behavior Monitoring , 2015, IEEE Sensors Journal.
[93] John L. Volakis,et al. A Wireless Fully Passive Neural Recording Device for Unobtrusive Neuropotential Monitoring , 2016, IEEE Transactions on Biomedical Engineering.
[94] Nigel H. Lovell,et al. Design of Safe Two-Wire Interface-Driven Chip-Scale Neurostimulator for Visual Prosthesis , 2013, IEEE Journal of Solid-State Circuits.
[95] Chris E. Williams,et al. Visual prostheses for the blind. , 2013, Trends in biotechnology.
[96] Diego Ghezzi,et al. Retinal prostheses: progress toward the next generation implants , 2015, Front. Neurosci..
[97] Jessy D. Dorn,et al. Long-Term Results from an Epiretinal Prosthesis to Restore Sight to the Blind. , 2015, Ophthalmology.
[98] Guglielmo Lanzani,et al. Photothermal cellular stimulation in functional bio-polymer interfaces , 2015, Scientific Reports.
[99] Gang Chen,et al. Analysis of optical absorption in silicon nanowire arrays for photovoltaic applications. , 2007, Nano letters.
[100] Mitsumasa Koyanagi,et al. Evaluation of Platinum-Black Stimulus Electrode Array for Electrical Stimulation of Retinal Cells in Retinal Prosthesis System , 2007 .
[101] Toru Ishizuka,et al. Restoration of visual response in aged dystrophic RCS rats using AAV-mediated channelopsin-2 gene transfer. , 2007, Investigative ophthalmology & visual science.
[102] Nigel H. Lovell,et al. CMOS neurostimulation ASIC with 100 channels, scaleable output, and bidirectional radio-frequency telemetry , 2001, IEEE Transactions on Biomedical Engineering.
[103] Chen Xu,et al. Compact Hybrid Cell Based on a Convoluted Nanowire Structure for Harvesting Solar and Mechanical Energy , 2011, Advanced materials.
[104] K. Sun,et al. Compound Semiconductor Nanowire Solar Cells , 2011, IEEE Journal of Selected Topics in Quantum Electronics.
[105] Rahul Sarpeshkar,et al. A Low-Power Blocking-Capacitor-Free Charge-Balanced Electrode-Stimulator Chip With Less Than 6 nA DC Error for 1-mA Full-Scale Stimulation , 2007, IEEE Transactions on Biomedical Circuits and Systems.
[106] J. Rizzo. Update on Retinal Prosthetic Research: The Boston Retinal Implant Project , 2011, Journal of neuro-ophthalmology : the official journal of the North American Neuro-Ophthalmology Society.
[107] Nathan S. Lewis,et al. Comparison of the device physics principles of planar and radial p-n junction nanorod solar cells , 2005 .
[108] Jessy D. Dorn,et al. The Argus II epiretinal prosthesis system allows letter and word reading and long-term function in patients with profound vision loss , 2013, British Journal of Ophthalmology.
[109] Thomas Stieglitz,et al. RFID Technology for Continuous Monitoring of Physiological Signals in Small Animals , 2015, IEEE Transactions on Biomedical Engineering.
[110] Zhong Lin Wang,et al. Self-powered system with wireless data transmission. , 2011, Nano letters.
[111] F. Werblin,et al. Differential Targeting of Optical Neuromodulators to Ganglion Cell Soma and Dendrites Allows Dynamic Control of Center-Surround Antagonism , 2011, Neuron.
[112] Mitsumasa Koyanagi,et al. Power Supply System Using Electromagnetic Induction for Three-Dimensionally Stacked Retinal Prosthesis Chip , 2008 .
[113] Andrew K. Wise,et al. Chronic Electrical Stimulation with a Suprachoroidal Retinal Prosthesis: A Preclinical Safety and Efficacy Study , 2014, PloS one.
[114] Sabine Reinfeldt,et al. Analysis and Design of RF Power and Data Link Using Amplitude Modulation of Class-E for a Novel Bone Conduction Implant , 2012, IEEE Transactions on Biomedical Engineering.
[115] Ava K. Bittner,et al. The artificial silicon retina in retinitis pigmentosa patients (an American Ophthalmological Association thesis). , 2010, Transactions of the American Ophthalmological Society.
[116] Nitish V. Thakor,et al. Enabling Wireless Powering and Telemetry for Peripheral Nerve Implants , 2015, IEEE Journal of Biomedical and Health Informatics.
[117] Douglas S Kim,et al. Light-activated channels targeted to ON bipolar cells restore visual function in retinal degeneration , 2008, Nature Neuroscience.
[118] Alireza Kargar,et al. 3D branched nanowire heterojunction photoelectrodes for high-efficiency solar water splitting and H2 generation. , 2012, Nanoscale.
[119] Mitsumasa Koyanagi,et al. Pillar-shaped stimulus electrode array for high-efficiency stimulation of fully implantable epiretinal prosthesis , 2012 .
[120] Gislin Dagnelie,et al. Facial recognition using simulated prosthetic pixelized vision. , 2003, Investigative ophthalmology & visual science.
[121] Masahiro Nunoshita,et al. Retinal Stimulation on Rabbit Using Complementary Metal Oxide Semiconductor Based Multichip Flexible Stimulator toward Retinal Prosthesis , 2008 .
[122] Timothy A. Machado,et al. Functional connectivity in the retina at the resolution of photoreceptors , 2010, Nature.
[123] Chung-Yu Wu,et al. Responses of rabbit retinal ganglion cells to subretinal electrical stimulation using a silicon-based microphotodiode array. , 2011, Investigative ophthalmology & visual science.
[124] B. Roska,et al. Genetic address book for retinal cell types , 2009, Nature Neuroscience.
[125] Peidong Yang,et al. Nanowire ultraviolet photodetectors and optical switches , 2002 .
[126] Gert Cauwenberghs,et al. Ultra-high photosensitivity silicon nanophotonics for retinal prosthesis: Electrical characteristics , 2011, 2011 Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[127] Fangfang Sun,et al. Adaptively Alternative Light-Transport-Model-Based Three-Dimensional Optical Imaging for Longitudinal and Quantitative Monitoring of Gastric Cancer in Live Animal , 2016, IEEE Transactions on Biomedical Engineering.
[128] Linyou Cao,et al. Engineering light absorption in semiconductor nanowire devices. , 2009, Nature materials.
[129] A. Sher,et al. Photovoltaic Retinal Prosthesis with High Pixel Density , 2012, Nature Photonics.
[130] G. Suaning,et al. Attaining higher resolution visual prosthetics: a review of the factors and limitations , 2013, Journal of neural engineering.
[131] Mitsumasa Koyanagi,et al. Evaluation of Electrical Stimulus Current Applied to Retina Cells for Retinal Prosthesis , 2006 .
[132] J. Flannery,et al. Degenerative changes in a retina affected with autosomal dominant retinitis pigmentosa. , 1989, Investigative ophthalmology & visual science.
[133] D. Atchison,et al. The eye and visual optical instruments: Frontmatter , 1997 .
[134] Jongkil Park,et al. Energy-recycling integrated 6.78-Mbps data 6.3-mW power telemetry over a single 13.56-MHz inductive link , 2014, 2014 Symposium on VLSI Circuits Digest of Technical Papers.
[135] Marianne Haim,et al. Epidemiology of retinitis pigmentosa in Denmark. , 2002, Acta ophthalmologica Scandinavica. Supplement.
[136] Xin Lei,et al. Photovoltaic Pixels for Neural Stimulation: Circuit Models and Performance , 2016, IEEE Transactions on Biomedical Circuits and Systems.
[137] S. Baccus,et al. Precise Neural Stimulation in the Retina Using Focused Ultrasound , 2013, The Journal of Neuroscience.
[138] James Weiland,et al. Artificial vision: needs, functioning, and testing of a retinal electronic prosthesis. , 2009, Progress in brain research.