摩擦电效应
材料科学
压力传感器
可穿戴计算机
电压
灵敏度(控制系统)
静电纺丝
光电子学
可穿戴技术
脉搏(音乐)
波形
纳米纤维
电介质
声学
小型化
纳米技术
纤维
电气工程
Boosting(机器学习)
电子工程
计算机科学
生物医学工程
响应时间
作者
Joonmin Chae,Sumin Cho,Dong Yong Park,Sung Jea Park,Dongwhi Choi
标识
DOI:10.1088/2631-6331/ae3356
摘要
Abstract Wearable sensors based on the triboelectric effect have been developed as powerful tools for healthcare monitoring recently, enabling the acquisition of physiological signals. However, in the case of the pulse, the mechanical characteristics make it imperative due to the tiny pressure and low-frequency that the sensor measuring it be highly sensitive. This work focuses on designing a highly sensitive, diameter-tuned triboelectric pressure sensor (DPS) by controlling the applied voltage during P(VDF-TrFE) electrospinning, to achieve a higher triboelectric effect and thus greater sensitivity of the DPS. Specifically, by varying the applied voltage, we quantitatively compared changes in fiber diameter, β -phase fraction, and crystallinity. We present that higher electrospinning voltage yields thinner fibers with increased β -phase content and crystallinity, which enhance dielectric polarization and strengthen charge retention, thereby boosting the triboelectric effect. Consequently, the resulting high-sensitivity DPS precisely detects human pulse signals. The fabricated DPS achieved remarkable sensitivity (0.03044 nA · Pa −1 ) and a high coefficient of determination (∼99.7%), maintaining stable performance over 20 000 cycles. Reliable pulse waveforms can be detected at the carotid, radial, and brachial arteries, and validation against a commercial pulse sensor confirmed its accuracy of 97%. The DPS exhibits excellent sensitivity, durability, and validated applicability in human pulse monitoring, underscoring its potential for integration into next-generation wearable healthcare and self-powered physiological monitoring systems.
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