Extensible Integrated System for Real-Time Monitoring of Cardiovascular Physiological Signals and Limb Health

Advanced materials (Deerfield Beach, Fla.)(2023)

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摘要
In recent decades, the rapid growth in flexible materials, new manufacturing technologies, and wearable electronics design techniques has helped establish the foundations for noninvasive photoelectric sensing systems with shape-adaptability and "skin-like" properties. Physiological sensing includes humidity, mechanical, thermal, photoelectric, and other aspects. Photoplethysmography (PPG), an important noninvasive method for measuring pulse rate, blood pressure, and blood oxygen, uses the attenuated signal obtained by the light absorbed and reflected from living tissue to a light source to realize real-time monitoring of human health status. This work illustrates a patch-type optoelectronic system that integrates a flexible perovskite photodetector and all-inorganic light-emitting diodes (LEDs) to realize the real-time monitoring of human PPG signals. The pulse rate of the human body and the swelling degree of finger joints can be extracted and analyzed using photodetectors, thus monitoring human health for the prevention and early diagnosis of certain diseases. Specifically, this work develops a 3D wrinkled-serpentine interconnection wire that increases the shape adaptability of the device in practical applications. The PPG signal sensor reported in this study has considerable potential for future wearable intelligent medical applications. Extensible integrated systems based on perovskite photodetector are very lightweight and have excellent shape adaptability, which not only can overcome the brittleness of rigid device, but also has good mechanical protection and electrical interconnection structure to adapt to disturbances caused by deformation. This work develops a promising approach for extracting pulse wave signals that can reflect human health status.image
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关键词
cardiovascular physiological signals,real‐time monitoring,real‐time real‐time,limb
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