Physical Intelligence Department, Max Planck Institute for Intelligent Systems, Stuttgart, 70569, Germany.
Max Planck-ETH Center for Learning Systems, Max Planck Institute for Intelligent Systems, Stuttgart, 70569, Germany.
Adv Mater. 2017 Jul;29(28). doi: 10.1002/adma.201701353. Epub 2017 May 19.
A facile approach is proposed for superior conformation and adhesion of wearable sensors to dry and wet skin. Bioinspired skin-adhesive films are composed of elastomeric microfibers decorated with conformal and mushroom-shaped vinylsiloxane tips. Strong skin adhesion is achieved by crosslinking the viscous vinylsiloxane tips directly on the skin surface. Furthermore, composite microfibrillar adhesive films possess a high adhesion strength of 18 kPa due to the excellent shape adaptation of the vinylsiloxane tips to the multiscale roughness of the skin. As a utility of the skin-adhesive films in wearable-device applications, they are integrated with wearable strain sensors for respiratory and heart-rate monitoring. The signal-to-noise ratio of the strain sensor is significantly improved to 59.7 because of the considerable signal amplification of microfibrillar skin-adhesive films.
提出了一种简便的方法来改善可穿戴传感器在干燥和湿润皮肤表面的贴合性能。受皮肤启发的黏附薄膜由弹性体微纤维组成,微纤维上装饰有共形的蘑菇状乙烯基硅氧烷尖端。粘性乙烯基硅氧烷尖端直接交联在皮肤表面,从而实现了牢固的皮肤黏附。此外,由于硅氧烷尖端能够极好地适应皮肤的多尺度粗糙度,复合微纤维黏附薄膜具有 18 kPa 的高黏附强度。作为黏附薄膜在可穿戴设备应用中的一项实用功能,将其与可穿戴应变传感器集成,用于呼吸和心率监测。由于微纤维黏附薄膜具有相当大的信号放大作用,应变传感器的信噪比显著提高到 59.7。