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皮上注射式颗粒型黏合剂,用于交互式人机界面。

Injection-on-Skin Granular Adhesive for Interactive Human-Machine Interface.

机构信息

Department of Intelligent Precision Healthcare Convergence, Sungkyunkwan University, Suwon, 16419, Republic of Korea.

Center for Neuroscience Imaging Research, Institute for Basic Science (IBS), Suwon, 16419, Republic of Korea.

出版信息

Adv Mater. 2023 Nov;35(48):e2307070. doi: 10.1002/adma.202307070. Epub 2023 Oct 25.

Abstract

Realization of interactive human-machine interfaces (iHMI) is improved with development of soft tissue-like strain sensors beyond hard robotic exosuits, potentially allowing cognitive behavior therapy and physical rehabilitation for patients with brain disorders. Here, this study reports on a strain-sensitive granular adhesive inspired by the core-shell architectures of natural basil seeds for iHMI as well as human-metaverse interfacing. The granular adhesive sensor consists of easily fragmented hydropellets as a core and tissue-adhesive catecholamine layers as a shell, satisfying great on-skin injectability, ionic-electrical conductivity, and sensitive resistance changes through reversible yet robust cohesion among the hydropellets. Particularly, it is found that the ionic-electrical self-doping of the catecholamine shell on hydrosurfaces leads to a compact ion density of the materials. Based on these physical and electrical properties of the sensor, it is demonstrated that successful iHMI integration with a robot arm in both real and virtual environments enables robotic control by finger gesture and haptic feedback. This study expresses benefits of using granular hydrogel-based strain sensors for implementing on-skin writable bioelectronics and their bridging into the metaverse world.

摘要

具有软质类似软组织的应变传感器的交互式人机界面 (iHMI) 的实现得到了改进,超越了硬质机器人外骨骼,这可能为大脑障碍患者提供认知行为疗法和物理康复。在这项研究中,报告了一种基于天然罗勒种子核壳结构的应变敏感颗粒型粘合剂,用于 iHMI 以及人机元宇宙接口。颗粒型粘合剂传感器由易破碎的水凝胶颗粒作为核,组织粘附儿茶酚胺层作为壳组成,满足了出色的可注射性、离子导电性以及通过水凝胶颗粒之间的可逆但坚固的内聚力实现的灵敏电阻变化。特别地,发现儿茶酚胺壳在水基表面上的离子电自掺杂导致材料的离子密度紧凑。基于传感器的这些物理和电气特性,成功地证明了机器人手臂在真实和虚拟环境中的 iHMI 集成可以通过手指手势和触觉反馈来实现机器人控制。这项研究表达了使用基于颗粒水凝胶的应变传感器来实现可写入皮肤的生物电子学及其融入元宇宙世界的好处。

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