Silicon-photonics optoacoustic sensor for fully wearable blood pressure monitoring

Abstract Cuffless blood pressure monitoring is essential for continuous cardiovascular assessment. Current wearable approaches rely on pulse-echo ultrasound patches that track pulsating arterial diameters. However, multi-element designs and precise alignment complicate their applicability as a fully wearable solution. We overcome these challenges by using a highly miniaturized silicon-photonics acoustic detector and optoacoustic excitation to generate ultrasound waves inside the artery. The superior contrast in these optoacoustic signals and the detector’s semi-isotropic sensitivity enable robust artery diameter monitoring with a single detection element, achieving high tolerance to translation and rotation. The detector’s high sensitivity, achieved despite its small size, enables measuring optoacoustic signals from the radial artery with a high contrast at 100 Hz, capturing the features of the blood pressure waveform. Here, we show that the device’s agreement with a reference cuff-based blood pressure monitor highlights the potential of silicon-photonics optoacoustic sensing as a practical solution for continuous, cuffless monitoring in daily life.

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Publication Details

Journal
Nature Communications
Published
2026-09-17
DOI
https://doi.org/10.1038/s41467-026-77580-3
Primary Topic
Photoacoustic and Ultrasonic Imaging
Type
article
Field-Weighted Citation Impact
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Silicon-photonics optoacoustic sensor for fully wearable blood pressure monitoring

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Silicon-photonics optoacoustic sensor for fully wearable blood pressure monitoring

Tamar Harary, Amir Rosenthal, D.H. Lange, Yoav Hazan, Ron Moisseev, Gil Gelbert
article en

Abstract

Abstract Cuffless blood pressure monitoring is essential for continuous cardiovascular assessment. Current wearable approaches rely on pulse-echo ultrasound patches that track pulsating arterial diameters. However, multi-element designs and precise alignment complicate their applicability as a fully wearable solution. We overcome these challenges by using a highly miniaturized silicon-photonics acoustic detector and optoacoustic excitation to generate ultrasound waves inside the artery. The superior contrast in these optoacoustic signals and the detector’s semi-isotropic sensitivity enable robust artery diameter monitoring with a single detection element, achieving high tolerance to translation and rotation. The detector’s high sensitivity, achieved despite its small size, enables measuring optoacoustic signals from the radial artery with a high contrast at 100 Hz, capturing the features of the blood pressure waveform. Here, we show that the device’s agreement with a reference cuff-based blood pressure monitor highlights the potential of silicon-photonics optoacoustic sensing as a practical solution for continuous, cuffless monitoring in daily life.

Nature Communications
Technion – Israel Institute of Technology (IL)
Openalex Percentile: Top 21%
Photoacoustic and Ultrasonic Imaging
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