Dong Fuhao, Yang Xinxin, Guo Lizhen, Qian Yuehan, Sun Penghao, Huang Zhen, Xu Xu, Liu He
College of Chemical Engineering, Nanjing Forestry University, Co-Innovation Center of Efficient Processing and Utilization of Forest Resources, Jiangsu Provincial Key Lab for the Chemistry and Utilization of Agro-forest Biomass, Nanjing 210037, Jiangsu Province, China; Institute of Chemical Industry of Forestry Products, Chinese Academy of Forestry, Key Laboratory of Biomass Energy and Material, National Engineering Laboratory for Biomass Chemical Utilization, Key and Open Laboratory of Forest Chemical Engineering, State Forestry Administration, Nanjing 210042, Jiangsu Province, China.
Institute of Chemical Industry of Forestry Products, Chinese Academy of Forestry, Key Laboratory of Biomass Energy and Material, National Engineering Laboratory for Biomass Chemical Utilization, Key and Open Laboratory of Forest Chemical Engineering, State Forestry Administration, Nanjing 210042, Jiangsu Province, China.
J Colloid Interface Sci. 2023 Feb;631(Pt B):239-248. doi: 10.1016/j.jcis.2022.11.045. Epub 2022 Nov 14.
Recently, conductive composites have been used in flexible electronic devices and have attracted attention. The integration of self-healing, high sensitivity, large tensile strength, environmental stability, and easy recyclability into conductive composites is very desirable yet challenging. Hence, a conductive composite as a flexible strain sensor with a self-healing and recyclability is facilely developed, with a polyurethane (PU) elastomer bearing dynamic boronic ester as the polymer matrix and carbon nanotubes (CNTs) as a conductive filler. Due to the dynamic boronic ester bond and hydrogen bond, the prepared polyurethane conductive composite has good self-healing and mechanical properties. It not only has a high healing efficiency of 78 % but also has a tensile strength of 15.4 MPa and an elongation at break of 420 %. In addition, the prepared conductive composite has high conductivity (0.57 mS/cm) and sensitivity. As a wearable sensor, it can identify human activities in all directions, such as elbow and finger bending, speaking, and facial changes. Consequently, the polyurethane conductive composite prepared in this study exhibited wonderful application potential in wearable electronic devices such as self-healing strain sensors.
近年来,导电复合材料已被应用于柔性电子器件并受到关注。将自愈性、高灵敏度、大拉伸强度、环境稳定性和易回收性集成到导电复合材料中是非常理想的,但也具有挑战性。因此,一种具有自愈性和可回收性的导电复合材料作为柔性应变传感器被轻松开发出来,它以带有动态硼酸酯的聚氨酯(PU)弹性体作为聚合物基体,以碳纳米管(CNTs)作为导电填料。由于动态硼酸酯键和氢键,所制备的聚氨酯导电复合材料具有良好的自愈性和机械性能。它不仅具有78%的高愈合效率,还具有15.4MPa的拉伸强度和420%的断裂伸长率。此外,所制备的导电复合材料具有高导电性(0.57mS/cm)和灵敏度。作为可穿戴传感器,它可以全方位识别人类活动,如肘部和手指弯曲、说话以及面部变化。因此,本研究制备的聚氨酯导电复合材料在自愈应变传感器等可穿戴电子器件中展现出了出色的应用潜力。