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Titlebook: Handbook of Neuroengineering; Nitish V. Thakor Reference work 2023 Springer Nature Singapore Pte Ltd. 2023 Brain structure and function.Vi

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linicians using neurotechnologies will find the Handbook a single source for foundation and state-of-the-art applications in the field of Neuroengineering. Regulatory agencies, entrepreneurs, investors and lega978-981-16-5540-1
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Anoop C. Patil,Nitish V. Thakorn sind, erweisen sich hier — wie auch schon oft! — als ganz einseitig. Je mehr man eine Chemie ohne Lösungsmittel betreibt, desto reicher und vielseitiger erweisen sich die Ergebnisse, und man sieht, daß man auf vielen Gebieten der präparativen anorganischen Chemie, die man vielerorts schon als abge
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Subcellular Compartmentalization for Neurobiology: Focusing on the Axonuronal tissues. Here, we describe in vitro subcellular compartmentalization, spatial and fluidic, to focus on the axon for fundamental neurobiology research and for modeling neuropathological conditions. We further discuss various engineering techniques incorporated into compartmentalized devices an
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Microfluidic Culture Platforms in Neuroscience Researchheir low-cost potential and great control over miniature amounts of biological sample and reagents. In this chapter, we discuss the design, material choice, and fabrication of microfluidic devices. More importantly, we highlight various applications of both systems on studying several key biological
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Flexible and Soft Materials and Devices for Neural Interfacel nervous systems. One of the main challenges of chronic implants is the degradation of recording and stimulation performance over time. This is partly due to the inflammatory host tissue responses to the implanted devices, resulting in decreased density and health of neuronal elements at the electr
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Coatings for Microneural Implants: Biological and Mechanical Considerationstion and mechanical properties. The rationale for adding device coatings and the general attributes that are important to consider for all coatings are introduced. The chapter is then organized by the coating goal: (1) improve biological integration or (2) improve mechanical properties. For each typ
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Coatings for Microneural Implants: Electrical Considerationsaradaic charge transfer mechanisms are introduced, and their benefits and disadvantages are discussed in context of charge transfer at the electrode-tissue interface. The chapter then discusses specific examples of coatings for faradaic charge transfer and coatings for non-faradaic charge transfer.
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