Biomimetic Multimodal Receptors for Comprehensive Artificial Human Somatosensory System.
Cheng ChenJie-Long XuQuan WangXin-Lin LiFeng-Qi XuYu-Cheng GaoYin-Bo ZhuHeng-An WuJian-Wei LiuPublished in: Advanced materials (Deerfield Beach, Fla.) (2024)
Electronic skin (e-skin) capable of acquiring environmental and physiological information have attracted interest for healthcare, robotics, and human-machine interaction. However, traditional 2D e-skin only allows for in-plane force sensing, which limits access to comprehensive stimulus feedback due to the lack of out-of-plane signal detection caused by its 3D structure. Here, a dimension-switchable bioinspired receptor is reported to achieve multimodal perception by exploiting film kirigami. It offers the detection of in-plane (pressure and bending) and out-of-plane (force and airflow) signals by dynamically inducing the opening and reclosing of sensing unit. The receptor's hygroscopic and thermoelectric properties enable the sensing of humidity and temperature. Meanwhile, the thermoelectric receptor can differentiate mechanical stimuli from temperature by the voltage. The development enables a wide range of sensory capabilities of traditional e-skin and expands the applications in real life. This article is protected by copyright. All rights reserved.
Keyphrases
- soft tissue
- endothelial cells
- healthcare
- wound healing
- single molecule
- loop mediated isothermal amplification
- pain management
- induced pluripotent stem cells
- pluripotent stem cells
- health information
- risk assessment
- social media
- transcranial direct current stimulation
- health insurance
- sensitive detection
- reduced graphene oxide