Querrey-Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL 60208.
Department of Electrical and Computer Engineering, University of Illinois at Urbana-Champaign, Urbana, IL 61801.
Proc Natl Acad Sci U S A. 2024 May 28;121(22):e2404007121. doi: 10.1073/pnas.2404007121. Epub 2024 May 20.
Sensations of heat and touch produced by receptors in the skin are of essential importance for perceptions of the physical environment, with a particularly powerful role in interpersonal interactions. Advances in technologies for replicating these sensations in a programmable manner have the potential not only to enhance virtual/augmented reality environments but they also hold promise in medical applications for individuals with amputations or impaired sensory function. Engineering challenges are in achieving interfaces with precise spatial resolution, power-efficient operation, wide dynamic range, and fast temporal responses in both thermal and in physical modulation, with forms that can extend over large regions of the body. This paper introduces a wireless, skin-compatible interface for thermo-haptic modulation designed to address some of these challenges, with the ability to deliver programmable patterns of enhanced vibrational displacement and high-speed thermal stimulation. Experimental and computational investigations quantify the thermal and mechanical efficiency of a vertically stacked design layout in the thermo-haptic stimulators that also supports real-time, closed-loop control mechanisms. The platform is effective in conveying thermal and physical information through the skin, as demonstrated in the control of robotic prosthetics and in interactions with pressure/temperature-sensitive touch displays.
皮肤感受器产生的热觉和触觉对于感知物理环境至关重要,在人际互动中起着特别重要的作用。以可编程方式复制这些感觉的技术进步不仅有可能增强虚拟/增强现实环境,而且在假肢或感觉功能受损的个体的医学应用中也有很大的前景。工程挑战在于实现具有精确空间分辨率、低功耗操作、宽动态范围和快速时变响应(无论是在热调制还是物理调制中)的接口,并且接口的形式可以扩展到身体的大部分区域。本文介绍了一种无线、皮肤兼容的热触觉调制接口,旨在解决其中的一些挑战,该接口具有提供可编程增强振动位移和高速热刺激模式的能力。实验和计算研究定量分析了热触觉刺激器中垂直堆叠设计布局的热效率和机械效率,该布局还支持实时闭环控制机制。该平台能够有效地通过皮肤传递热和物理信息,如在机器人假肢的控制和与压力/温度敏感触摸显示器的交互中得到证明。