Zhao Rongrong, Zhao Zengdian, Song Shasha, Wang Yifan
School of Chemistry and Chemical Engineering, Shandong University of Technology, Zibo 255000, P. R. China.
School of Mechanical and Aerospace Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore639798, Singapore.
ACS Appl Mater Interfaces. 2023 Dec 27;15(51):59854-59865. doi: 10.1021/acsami.3c15522. Epub 2023 Dec 14.
As typical soft materials, hydrogels have demonstrated great potential for the fabrication of flexible sensors due to their highly compatible elastic modulus with human skin, prominent flexibility, and biocompatible three-dimensional network structure. However, the practical application of wearable hydrogel sensors is significantly constrained because of weak adhesion, limited stretchability, and poor self-healing properties of traditional hydrogels. Herein, a multifunctional sodium hyaluronate (SH)/borax (B)/gelatin (G) double-cross-linked conductive hydrogel (SBG) was designed and constructed through a simple one-pot blending strategy with SH and gelatin as the gel matrix and borax as the dynamic cross-linker. The obtained SBG hydrogels exhibited a moderate tensile strength of 25.3 kPa at a large elongation of 760%, high interfacial toughness (106.5 kJ m), strong adhesion (28 kPa to paper), and satisfactory conductivity (224.5 mS/m). In particular, the dynamic cross-linking between SH, gelatin, and borax via borate ester bonds and hydrogen bonds between SH and gelatin chain endowed the SBG hydrogels with good fatigue resistance (>300 cycles), rapid self-healing performance (HE (healing efficiency) ∼97.03%), and excellent repeatable adhesion. The flexible wearable sensor assembled with SBG hydrogels demonstrated desirable strain sensing performance with a competitive gauge factor and exceptional stability, which enabled it to detect and distinguish various multiscale human motions and physiological signals. Furthermore, the flexible sensor is capable of precisely perceiving temperature variation with a high thermal sensitivity (1.685% °C). As a result, the wearable sensor displayed dual sensory performance for temperature and strain deformation. It is envisioned that the integration of strain sensors and thermal sensors provide a novel and convenient strategy for the next generation of multisensory wearable electronics and lay a solid foundation for their application in electronic skin and soft actuators.
作为典型的软材料,水凝胶因其与人体皮肤高度兼容的弹性模量、出色的柔韧性和生物相容性三维网络结构,在柔性传感器制造方面展现出巨大潜力。然而,由于传统水凝胶的附着力弱、拉伸性有限和自愈性能差,可穿戴水凝胶传感器的实际应用受到显著限制。在此,通过一种简单的一锅混合策略,以透明质酸钠(SH)和明胶为凝胶基质,硼砂为动态交联剂,设计并构建了一种多功能透明质酸钠(SH)/硼砂(B)/明胶(G)双交联导电水凝胶(SBG)。所得的SBG水凝胶在760%的大伸长率下表现出25.3 kPa的适度拉伸强度、高界面韧性(106.5 kJ/m)、强附着力(对纸张为28 kPa)和令人满意的导电性(224.5 mS/m)。特别地,SH、明胶和硼砂之间通过硼酸酯键的动态交联以及SH和明胶链之间的氢键赋予了SBG水凝胶良好的抗疲劳性(>300次循环)、快速自愈性能(愈合效率(HE)~97.03%)和出色的可重复附着力。用SBG水凝胶组装的柔性可穿戴传感器表现出理想的应变传感性能,具有有竞争力的应变片系数和卓越的稳定性,使其能够检测和区分各种多尺度人体运动和生理信号。此外,该柔性传感器能够以高热敏性(1.685%/°C)精确感知温度变化。因此,该可穿戴传感器展示了温度和应变变形的双重传感性能。可以设想,应变传感器和热传感器的集成将为下一代多感官可穿戴电子产品提供一种新颖便捷的策略,并为其在电子皮肤和软致动器中的应用奠定坚实基础。