Guo Ping, Zhang Zhaoxin, Qian Chengnan, Wang Ruofei, Cheng Lin, Tian Ye, Wu Huaping, Zhu Shuze, Liu Aiping
Zhejiang Key Laboratory of Quantum State Control and Optical Field Manipulation, Department of Physics, Zhejiang Sci-Tech University, Hangzhou, 310018, China.
Center for X-Mechanics, Key Laboratory of Soft Machines and Smart Devices of Zhejiang Province, Department of Engineering Mechanics, Institute of Applied Mechanics, Zhejiang University, Hangzhou, 310000, China.
Adv Mater. 2024 Nov;36(46):e2410324. doi: 10.1002/adma.202410324. Epub 2024 Sep 23.
Smart hydrogels have recently garnered significant attention in the fields of actuators, human-machine interaction, and soft robotics. However, when constructing large-scale actuated systems, they usually exhibit limited actuation forces (≈2 kPa) and actuation speeds. Drawing inspiration from hairspring energy conversion mechanism, an elasticity-plasticity-controllable composite hydrogel (PCTA) with robust contraction capabilities is developed. By precisely manipulating intermolecular and intramolecular hydrogen-bonding interactions, the material's elasticity and plasticity can be programmed to facilitate efficient energy storage and release. The proposed mechanism enables rapid generation of high contraction forces (900 kPa) at ultra-high working densities (0.96 MJ m). Molecular dynamics simulations reveal that modifications in the number and nature of hydrogen bonds lead to a distinct elastic-plastic transition in hydrogels. Furthermore, the conductive PCTA hydrogel exhibits multimodal sensing capabilities including stretchable strain sensing with a wide sensing range (1-200%), fast response time (180 ms), and excellent linearity of the output signal. Moreover, it demonstrates exceptional temperature and humidity sensing capabilities with high detection accuracy. The strong actuation power and real-time sensory feedback from the composite hydrogels are expected to inspire novel flexible driving materials and intelligent sensing systems.
智能水凝胶最近在致动器、人机交互和软体机器人领域引起了广泛关注。然而,在构建大规模驱动系统时,它们通常表现出有限的驱动力(约2 kPa)和驱动速度。受游丝能量转换机制的启发,开发了一种具有强大收缩能力的弹塑性可控复合水凝胶(PCTA)。通过精确操纵分子间和分子内的氢键相互作用,可以对材料的弹性和塑性进行编程,以促进高效的能量存储和释放。所提出的机制能够在超高工作密度(0.96 MJ m)下快速产生高收缩力(900 kPa)。分子动力学模拟表明,氢键数量和性质的改变会导致水凝胶中明显的弹塑性转变。此外,导电PCTA水凝胶具有多模态传感能力,包括具有宽传感范围(1-200%)的可拉伸应变传感、快速响应时间(180 ms)和出色的输出信号线性度。此外,它还展示了具有高检测精度的卓越温度和湿度传感能力。复合水凝胶强大的驱动能力和实时传感反馈有望激发新型柔性驱动材料和智能传感系统的发展。