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Titlebook: Nanotechnology and Neuroscience: Nano-electronic, Photonic and Mechanical Neuronal Interfacing; Massimo De Vittorio,Luigi Martiradonna,Joh

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發(fā)表于 2025-3-21 18:49:49 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書目名稱Nanotechnology and Neuroscience: Nano-electronic, Photonic and Mechanical Neuronal Interfacing
編輯Massimo De Vittorio,Luigi Martiradonna,John Assad
視頻videohttp://file.papertrans.cn/662/661080/661080.mp4
概述Provides readers with state-of-the-art information about developing advanced nanotechnology tools for communicating with the brain.Includes discussion of the compatibility of fabrication techniques op
圖書封面Titlebook: Nanotechnology and Neuroscience: Nano-electronic, Photonic and Mechanical Neuronal Interfacing;  Massimo De Vittorio,Luigi Martiradonna,Joh
描述This book describes the use of modern micro- and nanofabrication technologies to develop improved tools for stimulating and recording electrical activity in neuronal networks. It provides an overview of the different ways in which the “nano-world” can be beneficial for neuroscientists, including improvement of mechanical adhesion of cells on electrodes, tight-sealed extracellular recordings or intracellular approaches with strongly reduced invasiveness and tools for localized electrical or optical stimulation in optogenetics experiments. Specific discussion of fabrication strategies is included, to provide a comprehensive guide to develop micro and nanostructured tools for biological applications. A perspective on integrating these devices with state-of-the-art technologies for large-scale in vitro and in vivo experiments completes the picture of neuronal interfacing with micro- and nanostructures.
出版日期Book 2014
關(guān)鍵詞BioMEMS; Biohybrid Systems; Brain Machine Interface; Medical Nanotechnology; Nanofabrication for Neurona
版次1
doihttps://doi.org/10.1007/978-1-4899-8038-0
isbn_softcover978-1-4939-4765-2
isbn_ebook978-1-4899-8038-0
copyrightSpringer Science+Business Media New York 2014
The information of publication is updating

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Nanoscale Field-Effect Transistors for Minimally Invasive, High Spatial Resolution, and Three-Dimenhe solution independently on the device/electrolyte interface impedance and hence allow for the miniaturization of the probes to nanometer scale, which is important for minimally invasive, high spatial resolution electrical recording and mapping of neuronal activities, as will be discussed in this c
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In-Cell Recording and Stimulation by Engulfment Mechanisms, to fabrication technologies that allow for a scalable design of hundreds or even thousands of electrodes. These devices, however, have been able to provide only . recording and stimulation with limited signal-to-noise ratio due to the extracellular positioning of the electrode in respect to the neu
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al applications. A perspective on integrating these devices with state-of-the-art technologies for large-scale in vitro and in vivo experiments completes the picture of neuronal interfacing with micro- and nanostructures.978-1-4939-4765-2978-1-4899-8038-0
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es we notice that many variables in the support of the state vector are complex, or shared, and need to be evaluated to a constant value. In those situations the performance is no longer competitive with logic simulation and the breadth of the state exploration is limited. In order to improve on the
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