Choi Hyeong-Jun, Kang Byeong-Cheol, Ha Tae-Jun
Department of Electronic Materials Engineering, Kwangwoon University, Seoul, 01897, South Korea.
Department of Electronic Materials Engineering, Kwangwoon University, Seoul, 01897, South Korea.
Biosens Bioelectron. 2021 Jul 15;184:113231. doi: 10.1016/j.bios.2021.113231. Epub 2021 Apr 15.
Although conventional skin-attachable electronics exhibit good functionalities, their direct attachment (without any adhesive) to human skin with sufficient conformal contact is challenging. Herein, all-solution-processed on-skin electronics based on self-reconfigurable high-weight-per- volume-gelatin (HWVG) film constructed using an effective, biocompatible water absorption-evaporation technique are demonstrated. Completely conformal contact of self-reconfigurable HWVG films is realized by rapidly inducing anisotropic swelling in the perpendicular direction and covering any curvature on the skin without spatial gap or void after shrinking. A sufficiently thin HWVG film (~2 um) exhibited higher adhesion owing to van der Waals force and the carboxylic acid and amine groups in HWVG film form cross-linkages through intermolecular bonds with human skin. Self-reconfigurable HWVG films with high biocompatibility are optimized to afford a superior efficiency of 87.83 % at a concentration of 20 % (w/v) and a storage modulus of 1822 MPa at 36.5 °C. Furthermore, functional nanoelectrodes consisting of self-reconfigurable silver nanowires/HWVG films for high-performance on-skin sensors allowing the detection of sensitive motion and electrophysiological signals, as well as an armband-type sensor system incorporated with a smartphone for health-care monitoring are demonstrated. Outstanding performances, including stability, reliability, flexibility, re-usability, biocompatibility, and permeability of on-skin electronics based on HWVG films can open-up a prospective route to realizing breathable human-machine interfaces based on biocompatible materials and processes.
尽管传统的可附着在皮肤上的电子器件具有良好的功能,但要将它们直接(不使用任何粘合剂)与人体皮肤实现充分的贴合接触仍具有挑战性。在此,展示了基于自重构高体积重量明胶(HWVG)薄膜的全溶液处理的皮肤电子器件,该薄膜是使用一种有效且生物相容的吸水 - 蒸发技术构建的。通过在垂直方向快速诱导各向异性膨胀并在收缩后覆盖皮肤上的任何曲率且无空间间隙或空洞,实现了自重构HWVG薄膜的完全贴合接触。由于范德华力,足够薄的HWVG薄膜(约2微米)表现出更高的附着力,并且HWVG薄膜中的羧酸和胺基团通过与人体皮肤的分子间键形成交联。具有高生物相容性的自重构HWVG薄膜经过优化,在浓度为20%(w/v)时具有87.83%的优异效率,在36.5°C时储能模量为1822兆帕。此外,还展示了由用于高性能皮肤传感器的自重构银纳米线/HWVG薄膜组成的功能性纳米电极,该传感器能够检测敏感运动和电生理信号,以及一种集成了智能手机用于医疗保健监测的臂带式传感器系统。基于HWVG薄膜的皮肤电子器件具有出色的性能,包括稳定性、可靠性、柔韧性、可重复使用性、生物相容性和透气性,这可以为基于生物相容材料和工艺实现透气的人机界面开辟一条前景广阔的途径。