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Titlebook: Implantable Neural Prostheses 2; Techniques and Engin David Zhou,Elias Greenbaum Book 2010 Springer-Verlag New York 2010 Biomedical applica

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Book 2010iomedical engineers and neuroscientists around the world are working to improve the design and performance of existing devices and to develop novel devices for arti?cial vision, arti?cial limbs, and brain-machine interfaces. This book, Implantable Neural Prostheses 2: Techniques and Engineering Appr
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1618-7210 , stimulation, and wireless telemetry. The design process in the development of medical devices is also discussed. Advances in biomedical engineering, microfabrication technology, and neu- science have led to i978-1-4614-2467-3978-0-387-98120-8Series ISSN 1618-7210 Series E-ISSN 2197-5647
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Science and Technology of Bio-Inert Thin Films as Hermetic-Encapsulating Coatings for Implantable B bio-inert encapsulating coatings to protect a Si microchip implanted in the human eye from being attacked by chemicals existing in the eye’s saline environment. The work discussed in this chapter is related to the development of a novel ultrananocrystalline diamond (UNCD) hermetic coating, which ex
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In Situ Characterization of Stimulating Microelectrode Arrays: Study of an Idealized Structure Baselectrical measurements in a model “eye,” beginning with a single electrode, followed by a 9-electrode array structure, both idealized components based on the Argus II retinal implants. Correlating the information contained in the topographic features of the electric fields with psychophysical testin
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Stimulation Electrode Materials and Electrochemical Testing Methods,bility is due to both the greater number of available oxidation states and utilization of bulk porous oxide..In AC impedance, a titanium electrode exhibits the same double-layer capacitance per area as that of platinum. However, titanium suffers from irreversible buildup of a high-impedance oxide la
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Conducting Polymers in Neural Stimulation Applications,bionic interface that is necessary to promote biocompatibility in neural stimulation applications. While conducting polymers hold much promise in biomedical applications, more research is needed to further understand the properties of these materials. Factors such as electrode impedance, polymer vol
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