Stent with Piezoelectric Transducers for High Spatial Resolution Ultrasound Neuromodulation- a Finite Element Analysis

Conference Paper (2022)
Author(s)

Ignas Dilevicius (Student TU Delft)

W.A. Serdijn (TU Delft - Bio-Electronics)

T.M. Costa (TU Delft - Bio-Electronics)

Research Group
Bio-Electronics
Copyright
© 2022 Ignas Dilevicius, W.A. Serdijn, T.M. Lopes Marta da Costa
DOI related publication
https://doi.org/10.1109/EMBC48229.2022.9871956
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Ignas Dilevicius, W.A. Serdijn, T.M. Lopes Marta da Costa
Research Group
Bio-Electronics
Pages (from-to)
4966-4969
ISBN (print)
978-1-7281-2783-5
ISBN (electronic)
978-1-7281-2782-8
Reuse Rights

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Abstract

Deep brain stimulation is currently the only technique used in the clinical setting to modulate the neural activity of deep brain nuclei. Recently, low-intensity transcranial focused ultrasound (LIFU) has been shown to reversibly modulate brain activity through a transcranial pathway. Transcranial LIFU requires a low-frequency ultrasound of around 0.5 MHz due to skull attenuation, thus providing poor axial and lateral resolution. This paper proposes a new conceptual device that would use a stent to place a high-frequency ultrasound array within the brain vasculature to achieve high axial and lateral spatial resolution. The first part of this work identified the most commonly treated deep brain nuclei and examined the human brain vasculature for stent placement. Next, a finite element analysis was carried out using a piezoelectric array that follows the blood vessels curvature, and its ability to focus ultrasound waves in clinically relevant brain nuclei was evaluated. The analytical solution provided promising results for deep brain stimulation via a stent with ultrasound transducers for high spatial resolution neuromodulation.

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