Department of Chemical Engineering, Stanford University, Stanford, CA, USA.
Innovative Center for Flexible Devices (iFLEX), School of Materials Science and Engineering, Nanyang Technological University, Singapore, Singapore.
Nature. 2021 Dec;600(7888):246-252. doi: 10.1038/s41586-021-04053-6. Epub 2021 Dec 8.
Skin-like intrinsically stretchable soft electronic devices are essential to realize next-generation remote and preventative medicine for advanced personal healthcare. The recent development of intrinsically stretchable conductors and semiconductors has enabled highly mechanically robust and skin-conformable electronic circuits or optoelectronic devices. However, their operating frequencies have been limited to less than 100 hertz, which is much lower than that required for many applications. Here we report intrinsically stretchable diodes-based on stretchable organic and nanomaterials-capable of operating at a frequency as high as 13.56 megahertz. This operating frequency is high enough for the wireless operation of soft sensors and electrochromic display pixels using radiofrequency identification in which the base-carrier frequency is 6.78 megahertz or 13.56 megahertz. This was achieved through a combination of rational material design and device engineering. Specifically, we developed a stretchable anode, cathode, semiconductor and current collector that can satisfy the strict requirements for high-frequency operation. Finally, we show the operational feasibility of our diode by integrating it with a stretchable sensor, electrochromic display pixel and antenna to realize a stretchable wireless tag. This work is an important step towards enabling enhanced functionalities and capabilities for skin-like wearable electronics.
皮肤般的本征可拉伸软电子设备对于实现下一代远程和预防性医学,以及先进的个人医疗保健至关重要。本征可拉伸导体和半导体的最新发展使高度机械坚固且与皮肤贴合的电子电路或光电设备成为可能。然而,它们的工作频率一直限制在 100 赫兹以下,远低于许多应用所需的频率。在这里,我们报告了基于可拉伸有机和纳米材料的本征可拉伸二极管,其工作频率高达 13.56 兆赫兹。这个工作频率足以用于使用射频识别的软传感器和电致变色显示器像素的无线操作,其中载波频率为 6.78 兆赫兹或 13.56 兆赫兹。这是通过合理的材料设计和器件工程相结合实现的。具体来说,我们开发了一种可拉伸的阳极、阴极、半导体和集流器,它们可以满足高频操作的严格要求。最后,我们通过将其与可拉伸传感器、电致变色显示器像素和天线集成,展示了我们的二极管的工作可行性,以实现可拉伸的无线标签。这项工作是实现增强皮肤般可穿戴电子产品功能和能力的重要一步。