Xu Ruidong, She Minghua, Liu Jiaxu, Zhao Shikang, Zhao Jisheng, Zhang Xueji, Qu Lijun, Tian Mingwei
Research Center for Intelligent and Wearable Technology, College of Textiles and Clothing, State Key Laboratory of Bio-Fibers and Eco-Textiles, Collaborative Innovation Center for Eco-textiles of Shandong Province and the Ministry of Education, Intelligent Wearable Engineering Research Center of Qingdao, Qingdao University, Qingdao, Shandong 266071, PR China.
School of Biomedical Engineering, Health Science Center, Shenzhen University, Shenzhen 518060, PR China.
ACS Nano. 2023 May 9;17(9):8293-8302. doi: 10.1021/acsnano.2c12612. Epub 2023 Apr 19.
Touch panels are deemed as a critical platform for the future of human-computer interaction and metaverse. Recently, stretchable iontronic touch panels have attracted attention due to their superior adhesivity to the human body. However, such adhesion can not be named "real wearable", leading to discomfort for the wearer, such as rashes or itching with long-time wearing. Herein, a skin-friendly and wearable iontronic textile-based touch panel with highly touch-sensing resolution and deformation insensitivity is designed based on an in-suit growing strategy. This textile-based touch panel endows excellent interfacial hydrophilic and biocompatibility with human skin by overcoming the bottlenecks of the hydrogel-based uncomfortable sticky touch interface and low mechanical behavior. The developed touch panel enables handwriting interaction with good mechanical capacity (114 MPa), nearly 4145 times higher than pure hydrogel. More importantly, our touch panel possesses intrinsic insensitivity to wide external loading from the silver fiber (<0.003 g) to even heavy metal block (>10 kg). As proof of concept, the textile-based iontronic touch panel is applied to handwriting interaction, such as a flexible keyboard and wearable sketchpad. This iontronic touch panel with skin-friendly and wearable qualitities is helpful for next-generation wearable interaction electronics.
触摸面板被视为未来人机交互和元宇宙的关键平台。最近,可拉伸离子电子触摸面板因其对人体的卓越粘附性而受到关注。然而,这种粘附性不能被称为“真正可穿戴”,会给佩戴者带来不适,比如长时间佩戴会出现皮疹或瘙痒。在此,基于原位生长策略设计了一种具有高触感分辨率和变形不敏感性的亲肤且可穿戴的基于离子电子纺织品的触摸面板。这种基于纺织品的触摸面板通过克服基于水凝胶的不舒服的粘性触摸界面和低机械性能的瓶颈,赋予了与人体皮肤优异的界面亲水性和生物相容性。所开发的触摸面板能够实现具有良好机械性能(114兆帕)的手写交互,比纯水凝胶高出近4145倍。更重要的是,我们的触摸面板对从银纤维(<0.003克)到甚至重金属块(>10千克)的广泛外部负载具有内在不敏感性。作为概念验证,基于纺织品的离子电子触摸面板被应用于手写交互,如柔性键盘和可穿戴画板。这种具有亲肤和可穿戴特性的离子电子触摸面板对下一代可穿戴交互电子产品很有帮助。