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Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics.

Publication ,  Journal Article
Wang, B; Li, Z; Sebesta, C; Torres Hinojosa, D; Zhang, Q; Robinson, JT; Bao, G; Peterchev, AV; Goetz, SM
Published in: J Neural Eng
March 29, 2022

Objective.We present a combination of a power electronics system and magnetic nanoparticles that enable frequency-multiplexed magnetothermal-neurostimulation with rapid channel switching between three independent channels spanning a wide frequency range.Approach.The electronics system generates alternating magnetic field spanning 50 kHz to 5 MHz in the same coil by combining silicon (Si) and gallium-nitride (GaN) transistors to resolve the high spread of coil impedance and current required throughout the wide bandwidth. The system drives a liquid-cooled field coil via capacitor banks, forming three series resonance channels which are multiplexed using high-voltage contactors. We characterized the system by the output channels' frequencies, field strength, and switching time, as well as the system's overall operation stability. Using different frequency-amplitude combinations of the magnetic field to target specific magnetic nanoparticles with different coercivity, we demonstrate actuation of iron oxide nanoparticles in all three channels, including a novel nanoparticle composition responding to magnetic fields in the megahertz range.Main results.The system achieved the desired target field strengths for three frequency channels, with switching speed between channels on the order of milliseconds. Specific absorption rate measurements and infrared thermal imaging performed with three types of magnetic nanoparticles demonstrated selective heating and validated the system's intended use.Significance.The system uses a hybrid of Si and GaN transistors in bridge configuration instead of conventional amplifier circuit concepts to drive the magnetic field coil and contactors for fast switching between different capacitor banks. Series-resonance circuits ensure a high output quality while keeping the system efficient. This approach could significantly improve the speed and flexibility of frequency-multiplexed nanoparticle actuation, such as magnetogenetic neurostimulation, and thus provide the technical means for selective stimulation below the magnetic field's fundamental spatial focality limits.

Duke Scholars

Published In

J Neural Eng

DOI

EISSN

1741-2552

Publication Date

March 29, 2022

Volume

19

Issue

2

Location

England

Related Subject Headings

  • Magnetite Nanoparticles
  • Magnetics
  • Magnetic Fields
  • Electronics
  • Electric Impedance
  • Biomedical Engineering
  • 4003 Biomedical engineering
  • 3209 Neurosciences
  • 1109 Neurosciences
  • 1103 Clinical Sciences
 

Citation

APA
Chicago
ICMJE
MLA
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Wang, B., Li, Z., Sebesta, C., Torres Hinojosa, D., Zhang, Q., Robinson, J. T., … Goetz, S. M. (2022). Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics. J Neural Eng, 19(2). https://doi.org/10.1088/1741-2552/ac5b94
Wang, Boshuo, Zhongxi Li, Charles Sebesta, Daniel Torres Hinojosa, Qingbo Zhang, Jacob T. Robinson, Gang Bao, Angel V. Peterchev, and Stefan M. Goetz. “Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics.J Neural Eng 19, no. 2 (March 29, 2022). https://doi.org/10.1088/1741-2552/ac5b94.
Wang B, Li Z, Sebesta C, Torres Hinojosa D, Zhang Q, Robinson JT, et al. Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics. J Neural Eng. 2022 Mar 29;19(2).
Wang, Boshuo, et al. “Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics.J Neural Eng, vol. 19, no. 2, Mar. 2022. Pubmed, doi:10.1088/1741-2552/ac5b94.
Wang B, Li Z, Sebesta C, Torres Hinojosa D, Zhang Q, Robinson JT, Bao G, Peterchev AV, Goetz SM. Multichannel power electronics and magnetic nanoparticles for selective thermal magnetogenetics. J Neural Eng. 2022 Mar 29;19(2).
Journal cover image

Published In

J Neural Eng

DOI

EISSN

1741-2552

Publication Date

March 29, 2022

Volume

19

Issue

2

Location

England

Related Subject Headings

  • Magnetite Nanoparticles
  • Magnetics
  • Magnetic Fields
  • Electronics
  • Electric Impedance
  • Biomedical Engineering
  • 4003 Biomedical engineering
  • 3209 Neurosciences
  • 1109 Neurosciences
  • 1103 Clinical Sciences