Ultrastretchable, Self-Healing Conductive Hydrogel-Based Triboelectric Nanogenerators for Human-Computer Interaction.
Hao ZhangDongzhi ZhangZihu WangGuangshuai XiRuiyuan MaoYanhua MaDongyue WangMingcong TangZhenyuan XuHuixin LuanPublished in: ACS applied materials & interfaces (2023)
The rapid development of wearable electronic devices and virtual reality technology has revived interest in flexible sensing and control devices. Here, we report an ionic hydrogel (PTSM) prepared from polypropylene amine (PAM), tannic acid (TA), sodium alginate (SA), and MXene. Based on the multiple weak H-bonds, this hydrogel exhibits excellent stretchability (strain >4600%), adhesion, and self-healing. The introduction of MXene nanosheets endows the hydrogel sensor with a high gauge factor (GF) of 6.6. Meanwhile, it also enables triboelectric nanogenerators (PTSM-TENGs) fabricated from silicone rubber-encapsulated hydrogels to have excellent energy harvesting efficiency, with an instantaneous output power density of 54.24 mW/m 2 . We build a glove-based human-computer interaction (HMI) system using PTSM-TENGs. The multidimensional signal features of PTSM-TENG are extracted and analyzed by the HMI system, and the functions of gesture visualization and robot hand control are realized. In addition, triboelectric signals can be used for object recognition with the help of machine learning techniques. The glove based on PTSM-TENG achieves the classification and recognition of five objects through contact, with an accuracy rate of 98.7%. Therefore, strain sensors and triboelectric nanogenerators based on hydrogels have broad application prospects in man-machine interface, intelligent recognition systems, auxiliary control systems, and other fields due to their excellent stretchable and high self-healing performance.
Keyphrases
- tissue engineering
- drug delivery
- hyaluronic acid
- wound healing
- machine learning
- deep learning
- endothelial cells
- virtual reality
- induced pluripotent stem cells
- drug release
- artificial intelligence
- working memory
- reduced graphene oxide
- escherichia coli
- solid state
- heart rate
- pseudomonas aeruginosa
- big data
- loop mediated isothermal amplification