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Published:2025/10/23 10:35:08

最強!無線モニタリング技術で未来のヘルスケア革命✨

超要約:体の中をワイヤレスでモニタリングするスゴ技!IT企業が参入できるチャンスだよ♡

✨ ギャル的キラキラポイント ✨ ● 体内に埋め込むセンサーが、無線で色々測れちゃうって、マジ未来🚀 ● 患者さんが病院に行かなくても、おうちで健康チェックできるのは神🥺 ● IT企業がこの技術で、めっちゃ新しいビジネス始められるかも!ワクワクだね🎵

詳細解説いくよー!

背景 心臓とか血管の病気って、世界中でめっちゃ怖い病気じゃん?🚑 しかも、早期発見(そうきはっけん)が大事なんだけど、従来の検査って大変だったの😩 でも、この研究は、そんな問題(もんだい)を解決するスゴイ技術なんだ!

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A Multifunctional Capacitive Sensing Platform for Wireless Vascular and Heart Monitoring

Parviz Zolfaghari / Beril Yagmur Koca / Taher Abbasiasl / Hakan Urey / Hadi Mirzajani

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, reducing manufacturing complexity and enabling high reproducibility. The MAiCaS is suitable for three different applications: as a sensor for epicardial strain measurement, a stent as a sensor, and a vascular graft sensor. We demonstrate MAiCaS's versatility by validating its wireless resonance-based response to strain, pressure, and deformation across unrolled and rolled forms. In vitro experiments demonstrated consistent resonance frequency shifts under physiological conditions, with stable performance on skin, in PBS, human serum, and simulated vascular environments. Repeatability and aging tests confirmed its long-term reliability and elasticity under cyclic loading. Calibration curves revealed high sensitivity across all configurations, with wireless interrogation achieved through S11 parameter measurements and resonance frequency shift as the output metric. The sensitivity of the device was measured to be 2.9 MHz per 1% strain, 0.43 MHz/mmHg, and 309.6kHz/\textmu m for epicardial patch, graft, and stent integrated sensor, respectively. The operation of MAiCaS was evaluated in a human experiment. This monolithic sensor architecture provides a scalable and cost-effective solution for battery-free monitoring of vascular dynamics, with potential for remote diagnostics, post-surgical follow-up, and continuous cardiovascular health management.

cs / eess.SY / cs.SY