Wu Xujie, Yang Ziyi, Dong Yu, Teng Lijing, Li Dan, Han Hang, Zhu Simian, Sun Xiaomin, Zeng Zhu, Zeng Xiangyu, Zheng Qiang
Engineering Research Center of Intelligent Materials and Advanced Medical Devices, School of Biology and Engineering, Guizhou Medical University, Guian New District, Guiyang 561113, China.
Key Laboratory of Infectious Immune and Antibody Engineering of Guizhou Province, Engineering Research Center of Cellular Immunotherapy of Guizhou Province, School of Biology and Engineering/School of Basic Medical Sciences, Guizhou Medical University, Guian New District, Guiyang 561113, China.
Nanomaterials (Basel). 2024 Aug 20;14(16):1365. doi: 10.3390/nano14161365.
Human-machine interactions (HMIs) have penetrated into various academic and industrial fields, such as robotics, virtual reality, and wearable electronics. However, the practical application of most human-machine interfaces faces notable obstacles due to their complex structure and materials, high power consumption, limited effective skin adhesion, and high cost. Herein, we report a self-powered, skin adhesive, and flexible human-machine interface based on a triboelectric nanogenerator (SSFHMI). Characterized by its simple structure and low cost, the SSFHMI can easily convert touch stimuli into a stable electrical signal at the trigger pressure from a finger touch, without requiring an external power supply. A skeleton spacer has been specially designed in order to increase the stability and homogeneity of the output signals of each TENG unit and prevent crosstalk between them. Moreover, we constructed a hydrogel adhesive interface with skin-adhesive properties to adapt to easy wear on complex human body surfaces. By integrating the SSFHMI with a microcontroller, a programmable touch operation platform has been constructed that is capable of multiple interactions. These include medical calling, music media playback, security unlocking, and electronic piano playing. This self-powered, cost-effective SSFHMI holds potential relevance for the next generation of highly integrated and sustainable portable smart electronic products and applications.
人机交互(HMIs)已经渗透到各个学术和工业领域,如机器人技术、虚拟现实和可穿戴电子设备。然而,大多数人机界面的实际应用面临着显著的障碍,因为它们结构和材料复杂、功耗高、有效皮肤附着力有限且成本高。在此,我们报告一种基于摩擦纳米发电机的自供电、皮肤粘附且灵活的人机界面(SSFHMI)。SSFHMI具有结构简单和成本低的特点,在手指触摸的触发压力下,无需外部电源即可轻松将触摸刺激转换为稳定的电信号。特别设计了一个骨架间隔器,以提高每个摩擦纳米发电机单元输出信号的稳定性和均匀性,并防止它们之间的串扰。此外,我们构建了具有皮肤粘附特性的水凝胶粘附界面,以适应在复杂人体表面的轻松佩戴。通过将SSFHMI与微控制器集成,构建了一个能够进行多种交互的可编程触摸操作平台。这些交互包括医疗呼叫、音乐媒体播放、安全解锁和电子钢琴演奏。这种自供电、经济高效的SSFHMI对下一代高度集成和可持续的便携式智能电子产品及应用具有潜在的相关性。