Key Laboratory of Flexible Electronics (KLOFE) and Institute of Advanced Materials (IAM), Nanjing Tech University (NanjingTech), Nanjing 211816, China.
Physical Science and Engineering Division, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.
Nano Lett. 2024 Oct 2;24(39):12333-12342. doi: 10.1021/acs.nanolett.4c03896. Epub 2024 Sep 20.
Artificial ionic sensory systems, bridging the divide between biological systems and electronics, mimic human skin functions but face critical challenges with biocompatibility, comfort, signal stability, and simplifying packaging. Here, we present a simple and permeable skin-interfaced iontronic mechanosensing (SIIM) architecture that integrates human skin as natural ionic material and hierarchically porous MXene-fiber composite membranes as sensing electrodes. The SIIM system eliminates complex ionic material design and multilayer matrix, exhibiting ultrahigh pressure sensitivities (5.4 kPa, <75 Pa), a low detection limit (6 Pa), excellent output stability along with high permeability to minimize the impact of sweating on sensing. The noncytotoxic nature of SIIM electrodes ensures excellent biocompatibility (>97% cell coincubational viability), facilitating long-term wearability and high biosafety. Furthermore, the scalable SIIM configuration integrated with matrix smart gloves, effectively monitors human physical movements. This SIIM-based sensor with marked sensing capabilities, structural simplicity, and scalability, holds promising potential in diverse wearable applications.
人工离子感应系统在生物系统和电子学之间架起了桥梁,模拟了人类皮肤的功能,但在生物兼容性、舒适性、信号稳定性以及简化封装方面面临着重大挑战。在这里,我们提出了一种简单且具有渗透性的皮肤界面离子电子机械感应(SIIM)架构,该架构将人类皮肤作为天然离子材料,以及分级多孔 MXene 纤维复合膜作为感应电极。SIIM 系统消除了复杂的离子材料设计和多层基质,表现出超高的压力灵敏度(5.4kPa,<75Pa)、低检测限(6Pa)、出色的输出稳定性以及高渗透性,以将出汗对感应的影响降到最低。SIIM 电极的非细胞毒性确保了出色的生物兼容性(>97%的细胞共培养存活率),有利于长期佩戴和高生物安全性。此外,与基质智能手套集成的可扩展 SIIM 配置,可有效监测人体的物理运动。这种基于 SIIM 的传感器具有显著的传感能力、结构简单性和可扩展性,在各种可穿戴应用中具有广阔的应用前景。