Impact of microcoil shape and the efficacy of soft magnetic material cores in focal micromagnetic neurostimulation.

NER(2023)

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摘要
Micromagnetic neurostimulation (mu MS), despite being in its infancy, has shown promising results in spatially selective activation of neurons. The devices are micrometer-sized coils or microcoils (mu coils) which work on the principle of Faraday's Law of electromagnetic induction. Upon applying a time-varying current through these mu coils they generate a time-varying magnetic field which in turn induces an electric field that activates the neurons. These mu coils are spared from biofouling nuances as this induced electric field is not in direct electrochemical contact with the tissues. However, these mu coils have a high power of operation which lead to undesirable thermal effects on neurons. In this work, we have studied the efficacy of soft magnetic material (SMM) cores on these mu coils to solve two existing challenges for mu MS. First, to minimize the power consumption for these mu coils. Second, to achieve even more precise and focal activation of the neural tissues. We have studied 3 shapes of mu coils with comparable sizes in terms of spatial contour plots of magnetic field and induced electric field. Furthermore, the efficacy of 2 shapes of SMM cores, cone and rod, of varying sizes have been studied to obtain a spatially focal magnetic field and increased magnitude of induced electric field.
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activates,direct electrochemical contact,electromagnetic induction,Faraday's Law,focal activation,focal micromagnetic neurostimulation,for\upmu MS,induced electric field,microcoil shape,microcoils,neurons,of\upmu,precise activation,SMM cores,soft magnetic material cores,spatially focal magnetic field,spatially selective activation,these\upmu coils,these\upmu coilsare,these\upmu coilsto,time-varying magnetic field,varying sizes
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