Zhuo Shuyun, Wu Zihuan, Williams Chris, Sundaresan Chithiravel, Ameri Shideh Kabiri
Department of Electrical and Computer Engineering, Queen's University, Kingston, ON, K7L 3N6, Canada.
Centre for Neuroscience Studies, Queen's University, Kingston, ON, K7L 3N6, Canada.
Adv Healthc Mater. 2025 Jan;14(3):e2404296. doi: 10.1002/adhm.202404296. Epub 2024 Dec 11.
Significant developments have been made in the field of wearable healthcare by utilizing soft materials for the construction of electronic sensors. However, the lack of adaptability to complex topologies, such as ear canal, results in inadequate sensing performance. Here, we report an in-ear physiological sensor with mechanical adaptability, which softens upon contact with the ear canal's skin, thus reducing the sensor-skin mechanical mismatch and interface impedance. An efficient strategy of mechanical adjustment and switching is exploited to increase the softness of the device, leading to a significant decrease in Young's modulus from 30.5 MPa of thermoplastic polyurethane (TPU) to 0.86 MPa of TPU/Ecoflex foam (TEF).The mechanical adaptability at body temperature endows the in-ear device improved device-canal contact area and interface stability. As a result, the TEF-based in-ear device demonstrates reliable sensing, low motion artifact, and high comfort in electroencephalography (EEG) and core body temperature sensing. High quality EEG signals of alpha, beta, delta, and gamma are measured during different activities. Moreover, the TEF-based in-ear device exhibits high reusability for over 4 months, which makes it suitable for long-term healthcare monitoring.
通过使用软材料制造电子传感器,可穿戴医疗保健领域取得了重大进展。然而,缺乏对复杂拓扑结构(如耳道)的适应性,导致传感性能不足。在此,我们报告了一种具有机械适应性的入耳式生理传感器,它在与耳道皮肤接触时会变软,从而减少传感器与皮肤之间的机械失配和界面阻抗。我们采用了一种有效的机械调节和切换策略来提高设备的柔软度,使杨氏模量从热塑性聚氨酯(TPU)的30.5兆帕显著降低至TPU/生态柔性泡沫(TEF)的0.86兆帕。体温下的机械适应性赋予了入耳式设备更好的设备与耳道接触面积和界面稳定性。因此,基于TEF的入耳式设备在脑电图(EEG)和核心体温传感方面表现出可靠的传感、低运动伪影和高舒适度。在不同活动期间测量到了高质量的α、β、δ和γ脑电信号。此外,基于TEF的入耳式设备具有超过4个月的高可重复使用性,使其适用于长期医疗保健监测。