Chan-Chan Wang, Xinyu Tian, Jun Yao, Fangyan Huang, Rui Xie, Xiao-Jie Ju, Zhuang Liu, Da-Wei Pan, Wei Wang, Yuchao Deng, Liang-Yin Chu
Intelligent hydrogels have attracted widespread attention due to their broad application prospects in soft robotics, flexible electronics, and biomedical fields. Nevertheless, the development of hydrogel-based actuators that combine rapid responsiveness with enhanced mechanical strength still remains challenging. Herein, we report a facile and efficient strategy to simultaneously enhance the mechanical and responsive performances of photothermal-responsive hydrogels by constructing a flexible three-dimensional network composite by integrating poly( N -isopropylacrylamide) hydrogel with a melamine foam (MF) scaffold coated with reduced graphene oxide (rGO) nanosheets (PN@rGO@MF). This structure significantly improves the tensile strength of the hydrogel through an energy dissipation mechanism. Furthermore, the efficient photothermal conversion of rGO and the continuous heat-transfer pathways provided by the rGO-coated scaffold facilitate rapid heat transfer and efficient water transport within the hydrogels, leading to a greatly accelerated photothermal-responsive phase-transition volume change rate. By coupling the PN@rGO@MF composite hydrogel with a porous poly(vinylidene fluoride) layer, photothermal-responsive actuators with stable bilayer structures are constructed via a template-assisted method. The prepared actuators demonstrate excellent photothermal-responsiveness and cycling stability, bending ∼180° in 45 °C water and ∼95° under simulated sunlight within 1 min. The actuators function as smart actuators capable of lifting loads up to 9 times their own weights and can also be patterned into a fast-responding light-controlled switches. The proposed strategy achieves robust photothermal-responsive hydrogel actuators with high mechanical strength and fast responsiveness, offering valuable insights into developing high-performance flexible actuators and functional soft materials.