Abstract:
Implantable neural interfacing devices have added significantly to neural engineering by introducing the low-frequency oscillations of small populations of neurons known ...Show MoreMetadata
Abstract:
Implantable neural interfacing devices have added significantly to neural engineering by introducing the low-frequency oscillations of small populations of neurons known as local field potential as well as high-frequency action potentials of individual neurons. Regardless of the astounding progression as of late, conventional neural modulating system is still incapable to achieve the desired chronic in vivo implantation. The real constraint emerges from mechanical and physical differences between implants and brain tissue that initiates an inflammatory reaction and glial scar formation that reduces the recording and stimulation quality. Furthermore, traditional strategies consisting of rigid and tethered neural devices cause substantial tissue damage and impede the natural behavior of an animal, thus hindering chronic in vivo measurements. Therefore, enabling fully implantable neural devices requires biocompatibility, wireless power/data capability, biointegration using thin and flexible electronics, and chronic recording properties. This article reviews biocompatibility and design approaches for developing biointegrated and wirelessly powered implantable neural devices in animals aimed at long-term neural interfacing and outlines current challenges toward developing the next generation of implantable neural devices.
Published in: IEEE Transactions on Biomedical Circuits and Systems ( Volume: 14, Issue: 2, April 2020)
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- IEEE Keywords
- Index Terms
- Implantable Devices ,
- Wireless Power ,
- Brain Tissue ,
- Action Potential ,
- Neuronal Populations ,
- Scar Formation ,
- Individual Neurons ,
- Flexible Electronics ,
- Glial Scar ,
- Recording Quality ,
- Action Potentials In Neurons ,
- Glial Scar Formation ,
- Neural Engineering ,
- Chronic Recordings ,
- Young’s Modulus ,
- Low Resolution ,
- Peripheral Nerve ,
- Electrical Stimulation ,
- Energy Harvesting ,
- Wireless Systems ,
- Power Transfer ,
- Neural Stimulation ,
- Wireless Power Transfer ,
- Mechanical Mismatch ,
- Wireless Module ,
- Wireless Technologies ,
- Neural Implants ,
- Neural Recordings ,
- Stimulation System ,
- Parylene
- Author Keywords
- MeSH Terms
Keywords assist with retrieval of results and provide a means to discovering other relevant content. Learn more.
- IEEE Keywords
- Index Terms
- Implantable Devices ,
- Wireless Power ,
- Brain Tissue ,
- Action Potential ,
- Neuronal Populations ,
- Scar Formation ,
- Individual Neurons ,
- Flexible Electronics ,
- Glial Scar ,
- Recording Quality ,
- Action Potentials In Neurons ,
- Glial Scar Formation ,
- Neural Engineering ,
- Chronic Recordings ,
- Young’s Modulus ,
- Low Resolution ,
- Peripheral Nerve ,
- Electrical Stimulation ,
- Energy Harvesting ,
- Wireless Systems ,
- Power Transfer ,
- Neural Stimulation ,
- Wireless Power Transfer ,
- Mechanical Mismatch ,
- Wireless Module ,
- Wireless Technologies ,
- Neural Implants ,
- Neural Recordings ,
- Stimulation System ,
- Parylene
- Author Keywords
- MeSH Terms