Innovative Centre for Flexible Devices (iFLEX), School of Materials Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, 639798, Singapore.
Institute of High Performance Computing, Agency for Science, Technology and Research (A*STAR), 1 Fusionopolis Way, #16-16 Connexis North, 138632, Singapore.
Adv Mater. 2018 May;30(21):e1800129. doi: 10.1002/adma.201800129. Epub 2018 Mar 30.
Soft and stretchable electronic devices are important in wearable and implantable applications because of the high skin conformability. Due to the natural biocompatibility and biodegradability, silk protein is one of the ideal platforms for wearable electronic devices. However, the realization of skin-conformable electronic devices based on silk has been limited by the mechanical mismatch with skin, and the difficulty in integrating stretchable electronics. Here, silk protein is used as the substrate for soft and stretchable on-skin electronics. The original high Young's modulus (5-12 GPa) and low stretchability (<20%) are tuned into 0.1-2 MPa and > 400%, respectively. This plasticization is realized by the addition of CaCl and ambient hydration, whose mechanism is further investigated by molecular dynamics simulations. Moreover, highly stretchable (>100%) electrodes are obtained by the thin-film metallization and the formation of wrinkled structures after ambient hydration. Finally, the plasticized silk electrodes, with the high electrical performance and skin conformability, achieve on-skin electrophysiological recording comparable to that by commercial gel electrodes. The proposed skin-conformable electronics based on biomaterials will pave the way for the harmonized integration of electronics into human.
柔软、可拉伸的电子设备在可穿戴和植入式应用中非常重要,因为它们与皮肤具有高度的贴合性。由于天然的生物相容性和生物降解性,丝蛋白是可穿戴电子设备的理想平台之一。然而,基于丝的皮肤贴合电子设备的实现受到与皮肤的机械不匹配以及可拉伸电子设备集成的困难的限制。在这里,丝蛋白被用作软质和可拉伸的皮肤电子设备的基底。原始的高杨氏模量(5-12 GPa)和低拉伸性(<20%)分别被调整为 0.1-2 MPa 和>400%。这种塑性化是通过添加 CaCl 和环境水合作用实现的,其机制通过分子动力学模拟进一步研究。此外,通过薄膜金属化和环境水合后的褶皱结构形成获得了高拉伸性(>100%)的电极。最后,经过塑料处理的丝电极具有高的电性能和皮肤贴合性,可实现与商业凝胶电极相当的皮肤电生理记录。基于生物材料的这种可贴合皮肤的电子设备将为电子设备与人体的和谐集成铺平道路。