Pitt Shield

A Comprehensive Study of Ultrasound Transducer Characteristics in Microscopic Ultrasound Neuromodulation.

Authors: Gougheri HS, Dangi A, Kothapalli SR, Kiani M

In order to improve the spatial resolution of transcranial focused ultrasound stimulation (tFUS), we have recently proposed microscopic ultrasound stimulation (μUS). In μUS, either an electronically phased array of ultrasound transducers or several millimeter-sized focused transducers are placed on the brain surface or sub-millimeter-sized transducers are implanted inside the brain tissue to steer and deliver a focused ultrasound pressure directly to the neural target. A key element in both tFUS and μUS is the ultrasound transducer that converts electrical power to acoustic pressure. The literature lacks a comprehensive study (in a quantitative manner) of the transducer characteristics, such as dimension, focusing, acoustic matching, backing material, and sonication frequency (f<sub>p</sub>), in the μUS. This paper studies the impact of these design parameters on the acoustic beam profile of millimeter-sized transducers with the emphasis on the stimulation spatial resolution and energy efficiency, which is defined as the μUS figure-of-merit (FoM). For this purpose, disc-shaped focused and unfocused piezoelectric (PZT-5A) transducers with different dimension (diameter, thickness), backing material (PCB, air) and acoustic matching in the frequency range of 2.2-9.56 MHz were fabricated. Our experimental studies with both water and sheep brain phantom medium demonstrate that acoustically matched focused transducers with high quality factor are desirable for μUS, as they provide fine spatial resolution and high acoustic intensities with low input electrical power levels (i.e., high FoM).

Introduction

Purpose Transcranial ultrasound stimulation
Study Objective To quantitatively assess how transducer design parameters (diameter, thickness, focusing, backing material, acoustic matching, and sonication frequency) affect the acoustic beam profile, stimulation spatial resolution, and energy-efficiency (FoM) of millimeter-sized μUS transducers.
Animal model / Human subject Sheep (Ovis aries), strain: not specified, age: not specified, sex: not specified

Outcomes and Safety

Summary of Outcomes Acoustically matched, focused millimeter-sized PZT-5A transducers with high quality factor produced finer spatial resolution and higher acoustic intensities at lower input electrical power (higher μUS figure-of-merit) in water and sheep brain phantom. The study tested transducer diameter and thickness, focusing (focused vs unfocused), backing material (PCB vs air), acoustic matching, and sonication frequencies (2.2–9.56 MHz) and found focused geometry, acoustic matching, and high quality factor to be the most successful parameters.
Safety-related matter No adverse effects or safety issues were reported or discussed in the text; experiments were conducted in water and sheep brain phantom media rather than in vivo.

Brain Region

Visualization unavailable

Ultrasound Parameters

FUS Frequency 2.2-9.56 MHz
Focal Characteristics Focal depth: None; Focal length: None; Aperture size: None

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