A High Sensitivity CMUT-Based Passive Cavitation Detector for Monitoring Microbubble Dynamics During Focused Ultrasound Interventions.
Authors: Pakdaman Zangabad R, Lee H, Zhang X, Sait Kilinc M, Arvanitis CD, Levent Degertekin F
Tracking and controlling microbubble (MB) dynamics in the human brain through acoustic emission (AE) monitoring during transcranial focused ultrasound (tFUS) therapy are critical for attaining safe and effective treatments. The low-amplitude MB emissions have harmonic and ultra-harmonic components, necessitating a broad bandwidth and low-noise system for monitoring transcranial MB activity. Capacitive micromachined ultrasonic transducers (CMUTs) offer high sensitivity and low noise over a broad bandwidth, especially when they are tightly integrated with electronics, making them a good candidate technology for monitoring the MB activity through human skull. In this study, we designed a 16-channel analog front-end (AFE) electronics with a low-noise transimpedance amplifier (TIA), a band-gap reference circuit, and an output buffer stage. To assess AFE performance and ability to detect MB AE, we combined it with a commercial CMUT array. The integrated system has 12.3 - [Formula: see text] receive sensitivity with 0.085 - [Formula: see text] minimum detectable pressure (MDP) up to 3 MHz for a single element CMUT with 3.78 [Formula: see text] area. Experiments with free MBs in a microfluidic channel demonstrate that our system is able to capture key spectral components of MBs' harmonics when sonicated at clinically relevant frequencies (0.5 MHz) and pressures (250 kPa). Together our results demonstrate that the proposed CMUT system can support the development of novel passive cavitation detectors (PCD) to track MB activity for attaining safe and effective focused ultrasound (FUS) treatments.
Introduction
Purpose
Transcranial ultrasound stimulation
Study Objective
Develop and evaluate a tightly integrated CMUT and 16-channel low-noise analog front-end system to detect and characterize microbubble acoustic emissions for monitoring during transcranial focused ultrasound.
Outcomes and Safety
Summary of Outcomes
The integrated CMUT+AFE system reliably detected microbubble harmonic and ultraharmonic emissions—enabling tracking of MB activity for safer transcranial focused ultrasound—and successfully captured emissions during sonication at 0.5 MHz and 250 kPa (with sensitivity up to 3 MHz).
Safety-related matter
The paper emphasizes that monitoring microbubble activity is critical for attaining safe and effective focused ultrasound (FUS) treatments and notes experiments were conducted at clinically relevant frequencies and pressures (250 kPa); no adverse effects or safety incidents are reported.
Brain Region
Ultrasound Parameters
Ultrasound instrument
Commercial CMUT array (Capacitive Micromachined Ultrasonic Transducer); manufacturer: None reported; single-element aperture: 3.78 mm^2
FUS Frequency
0.5 MHz; up to 3 MHz
FUS Pressure
0.25 MPa
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: 3.78 mm^2
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