Nanocomposite Multimodal Sensor Array Integrated with Auxetic Structure for an Intelligent Biometrics System

A multimodal sensor array, combining pressure and proximity sensing, has attracted considerable interest due to its importance in ubiquitous monitoring of cardiopulmonary health‐ and sleep‐related biometrics. However, the sensitivity and dynamic range of prevalent sensors are often insufficient to d...

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Veröffentlicht in:Small (Weinheim an der Bergstrasse, Germany) Germany), 2024-11, Vol.20 (48), p.e2405224-n/a
Hauptverfasser: Cheng, Yu‐Jen, Li, Tianyi, Lee, Changwoo, Sakthivelpathi, Vigneshwar, Hahn, Jin‐Oh, Kwon, Younghoon, Chung, Jae‐Hyun
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Sprache:eng
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Zusammenfassung:A multimodal sensor array, combining pressure and proximity sensing, has attracted considerable interest due to its importance in ubiquitous monitoring of cardiopulmonary health‐ and sleep‐related biometrics. However, the sensitivity and dynamic range of prevalent sensors are often insufficient to detect subtle body signals. This study introduces a novel capacitive nanocomposite proximity‐pressure sensor (NPPS) for detecting multiple human biometrics. NPPS consists of a carbon nanotube‐paper composite (CPC) electrode and a percolating multiwalled carbon nanotube (MWCNT) foam enclosed in a MWCNT‐coated auxetic frame. The fractured fibers in the CPC electrode intensify an electric field, enabling highly sensitive detection of proximity and pressure. When pressure is applied to the sensor, the synergic effect of MWCNT foam and auxetic deformation amplifies the sensitivity. The simple and mass‐producible fabrication protocol allows for building an array of highly sensitive sensors to monitor human presence, sleep posture, and vital signs, including ballistocardiography (BCG). With the aid of a machine learning algorithm, the sensor array accurately detects blood pressure (BP) without intervention. This advancement holds promise for unrestricted vital sign monitoring during sleep or driving. A nanocomposite multimodal sensor array, combining pressure and proximity sensing, is developed for ubiquitous biometrics monitoring of cardiopulmonary health and sleep behavior. The synergetic efforts of the nanostructured electrode and auxetic structure demonstrate a high‐pressure sensitivity and an extended proximity range. With the aid of a machine learning algorithm, the sensor array accurately detects blood pressure without intervention.
ISSN:1613-6810
1613-6829
1613-6829
DOI:10.1002/smll.202405224