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Zhurnal Tekhnicheskoi Fiziki, 2025 Volume 95, Issue 2, Pages 385–397 (Mi jtf7210)

Special issue on the materials of the International Conference "Nanocarbon and Diamond" (NiA'2024)
Physical science of materials

Carbon framework nanomaterials for stimulation of neural tissue cells

D. T. Murashkoa, U. E. Kurilovaab, I. A. Suetinac, L. I. Russuc, A. V. Kuksina, M. V. Mezentsevac, E. P. Kitsyukd, A. G. Markovb, D. V. Telyshevab, A. Yu. Gerasimenkoab

a Institute of Biomedical Systems, National Research University of Electronic Technology MIET, Moscow, Zelenograd, Russian Federation
b I.M. Sechenov First Moscow State Medical University, Institute of Bionic Technology and Engineering, Moscow, Russia
c FSBI National Research Center for Epidemiology and Microbiology named after the honorary academician N. F. Gamaleya of the Russian Ministry of Health, Moscow, Russia
d SPC "Technological Center" MIET

Abstract: The paper presents a technology for the formation of carbon framework nanomaterials for the creation of neurointerfaces between electronic stimulating devices and neural tissue cells. Nanomaterials were formed by spray deposition and laser patterning of layers of single-walled carbon nanotubes and reduced graphene oxide. Radiation of the first harmonic of a nanosecond ytterbium fiber laser with a wavelength of 1064 nm and power of 0.07 W provided the formation of an electrically conductive framework of nanotubes, reduced graphene oxide and their hybrid structures, which was demonstrated by scanning electron microscopy and Raman spectroscopy. It is shown that laser exposure provided an increase in electrical conductivity from 1.2 to 3.5 times (up to 37.84 $\pm$ 1.16 mSm for hybrid structures from single-walled carbon nanotubes and reduced graphene oxide). The specified topologies from carbon frame nanomaterials were formed for their use as neurointerfaces with the generator of electrical pulses on the basis of a tablet for cell cultivation. Electrical stimulation in the process of cultivation provides an increase in the number of cells. An increase in the number of cells by 4.3 times for fibroblasts and 2.9 times for neural tissue cells grown on carbon frame nanomaterials compared to cells grown under conventional conditions was obtained. Formed carbon frame nanomaterials are promising for transmission of electrical signals in cell culture devices and other implantable devices, including neurointerfaces.

Keywords: carbon nanotubes, reduced graphene oxide, bioelectronics, neural interfaces, electrical stimulation.

Received: 01.11.2024
Revised: 01.11.2024
Accepted: 01.11.2024

DOI: 10.61011/JTF.2025.02.59735.368-24



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© Steklov Math. Inst. of RAS, 2025