Zhan Haoye, Wen Bo, Tian Bin, Zheng Ke, Li Quancai, Wu Wei
Laboratory of Printable Functional Materials and Printed Electronics, School of Physics and Technology, Wuhan University, Wuhan, 430072, P. R. China.
Small. 2024 Sep;20(36):e2400740. doi: 10.1002/smll.202400740. Epub 2024 May 1.
Integrating self-healing capabilities into printed stretchable electronic devices is important for improving performance and extending device life. However, achieving printed self-healing stretchable electronic devices with excellent device-level healing ability and stretchability while maintaining outstanding electrical performance remains challenging. Herein, a series of printed device-level self-healing stretchable electronic devices is achieved by depositing liquid metal/silver fractal dendrites/polystyrene-block-polyisoprene-block-polystyrene (LM/Ag FDs/SIS) conductive inks onto a self-healing thermoplastic polyurethane (TPU) film via screen printing method. Owing to the fluidic properties of the LM and the interfacial hydrogen bonding and disulfide bonds of TPU, the as-obtained stretchable electronic devices maintain good electronic properties under strain and exhibit device-level self-healing properties without external stimulation. Printed self-healing stretchable electrodes possess high electrical conductivity (1.6 × 10 S m), excellent electromechanical properties, and dynamic stability, with only a 2.5-fold increase in resistance at 200% strain, even after a complete cut and re-healing treatment. The printed self-healing capacitive stretchable strain sensor shows good linearity (R ≈0.9994) in a wide sensing range (0%-200%) and is successfully applied to bio-signal detection. Furthermore, the printed self-healing electronic smart label is designed and can be used for real-time environmental monitoring, which exhibits promising potential for practical application in food preservation packaging.
将自修复能力集成到印刷可拉伸电子设备中对于提高性能和延长设备寿命至关重要。然而,要实现具有出色的器件级修复能力和可拉伸性,同时又能保持优异电气性能的印刷自修复可拉伸电子设备仍然具有挑战性。在此,通过丝网印刷法将液态金属/银分形树枝状晶体/聚苯乙烯-嵌段-聚异戊二烯-嵌段-聚苯乙烯(LM/Ag FDs/SIS)导电油墨沉积在自修复热塑性聚氨酯(TPU)薄膜上,制备出了一系列印刷器件级自修复可拉伸电子设备。由于液态金属的流体特性以及TPU的界面氢键和二硫键,所制备的可拉伸电子设备在应变下保持良好的电学性能,并且在无外部刺激的情况下展现出器件级自修复性能。印刷自修复可拉伸电极具有高电导率(1.6×10 S m)、优异的机电性能和动态稳定性,即使在经过完全切断和重新愈合处理后,在200%应变下电阻仅增加2.5倍。印刷自修复电容式可拉伸应变传感器在宽传感范围(0%-200%)内显示出良好的线性度(R≈0.9994),并成功应用于生物信号检测。此外,还设计了印刷自修复电子智能标签,可用于实时环境监测,在食品保鲜包装的实际应用中展现出广阔的应用潜力。