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Carbon Nanotube Fibers for Neural Recording and Stimulation. | LitMetric

AI Article Synopsis

  • The paper explores the use of carbon nanotube (CNT)-based microelectrodes for recording and stimulating neuronal activity, emphasizing their advantages over traditional materials like gold (Au) and silver (Ag).
  • It highlights the superior performance of CNT fibers, demonstrating a significant increase in electron transfer efficiency and lower impedance, along with a high charge injection capacity of 15.09.
  • The study's findings suggest that CNT electrodes could improve neurophysiological applications due to their flexibility, chemical stability, and effectiveness in interfacing with biological tissues.

Article Abstract

Recordings and stimulations of neuronal electrical activity are topics of great interest in neuroscience. Many recording techniques, and even treatment of neurological disorders, can benefit from a microelectrode that is flexible, chemically inert, and electrically conducting and preferentially transfers electrons via capacitive charge injection. Commercial electrodes that currently exist and other electrodes that are being tested with the purpose of facilitating and improving the electron transport between solid materials and biological tissues still have some limitations. This paper discusses carbon nanotube (CNT)-based microelectrodes to record and stimulate neurons and compares their electron transport capabilities to noble metals such as Au and Ag. The recording ability of electrodes is tested through electroretinography on fly eyes by using Au and Ag wires and CNT fibers as electrodes. Stimulation is demonstrated through the implantation of Au wire and CNT fibers into the antennas of the Madagascar hissing cockroach () to control their locomotion. Our results demonstrate that a particular property of the CNT fiber is its high rate of electron transfer, leading to an order of magnitude lower impedance compared to Au and Ag and an impressive 15.09 charge injection capacity. We also established that this carbon nanomaterial assembly performs well for electrophysiology, rendering it a promising prospect for neurophysiological applications.

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Source
http://dx.doi.org/10.1021/acsabm.0c00861DOI Listing

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