A Multifunctional Capacitive Sensing Platform for Wireless Vascular and Heart Monitoring

ABSTRACT We present a multifunctional, antenna‐integrated capacitive sensing (MAiCaS) platform for passive, wireless, and real‐time cardiovascular monitoring. Unlike conventional systems that require separate sensors and wireless modules, our device unifies sensing, telemetry, and mechanical functionality into a compact and scalable design by exploiting the parasitic capacitance of an inductive antenna as a strain‐sensitive element. The sensor is fabricated using a cleanroom‐free, single‐step UV laser patterning process on a flexible PDMS substrate, significantly reducing manufacturing complexity and enabling high reproducibility. The MAiCaS is suitable for three different applications: as a sensor for epicardial strain measurement, as a stent sensor, and as a vascular graft sensor. In vitro experiments demonstrated consistent resonance frequency shifts under physiological and patophysiological conditions, with stable performance observed on skin, in PBS, human serum, and simulated vascular environments. Calibration curves revealed high sensitivity across all configurations. The sensitivity of the device was measured to be 2.9 MHz per 1% strain, 0.43 MHz/mmHg, and 309.6 kHz/µm for applications of epicardial patch, graft, and stent integrated sensor, respectively. Furthermore, the operation of MAiCaS was evaluated in a human experiment using the unrolled format attached to the skin surface over the proximal interphalangeal joint. This monolithic sensor architecture provides a scalable and cost‐effective solution for battery‐free monitoring of heart and vascular dynamics.

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Publication Details

Journal
Advanced Materials Technologies
Published
2026-09-11
DOI
https://doi.org/10.1002/admt.202502439
Primary Topic
Advanced Sensor and Energy Harvesting Materials
Type
article
Field-Weighted Citation Impact
0.00

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article

A Multifunctional Capacitive Sensing Platform for Wireless Vascular and Heart Monitoring

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Advanced Materials Technologies
Advanced Sensor and Energy Harvesting Materials
article

A Multifunctional Capacitive Sensing Platform for Wireless Vascular and Heart Monitoring

Parviz Zolfaghari, Hadi Mirzajani, Taher Abbasiasl, Hakan Ürey, Beril Yagmur Koca
article en

Abstract

ABSTRACT We present a multifunctional, antenna‐integrated capacitive sensing (MAiCaS) platform for passive, wireless, and real‐time cardiovascular monitoring. Unlike conventional systems that require separate sensors and wireless modules, our device unifies sensing, telemetry, and mechanical functionality into a compact and scalable design by exploiting the parasitic capacitance of an inductive antenna as a strain‐sensitive element. The sensor is fabricated using a cleanroom‐free, single‐step UV laser patterning process on a flexible PDMS substrate, significantly reducing manufacturing complexity and enabling high reproducibility. The MAiCaS is suitable for three different applications: as a sensor for epicardial strain measurement, as a stent sensor, and as a vascular graft sensor. In vitro experiments demonstrated consistent resonance frequency shifts under physiological and patophysiological conditions, with stable performance observed on skin, in PBS, human serum, and simulated vascular environments. Calibration curves revealed high sensitivity across all configurations. The sensitivity of the device was measured to be 2.9 MHz per 1% strain, 0.43 MHz/mmHg, and 309.6 kHz/µm for applications of epicardial patch, graft, and stent integrated sensor, respectively. Furthermore, the operation of MAiCaS was evaluated in a human experiment using the unrolled format attached to the skin surface over the proximal interphalangeal joint. This monolithic sensor architecture provides a scalable and cost‐effective solution for battery‐free monitoring of heart and vascular dynamics.

Advanced Materials Technologies
Koç University (TR), École Polytechnique Fédérale de Lausanne (CH)
H2020 Marie Skłodowska-Curie Actions
Openalex Percentile: Top 99%
Advanced Sensor and Energy Harvesting Materials
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