Xiaoyong Zhang, Zhenyi Wu, Yang Wang, Fan Li, Xianglv Hu, Wendi Liu, Qiumen He, Jinmei He, Yongping Bai, Lidong Zhang
Programmable soft actuators require independent control over both deformation pathways and driving-force output, yet conventional shape-memory systems generally encode these functions within a fixed network and therefore exhibit predetermined recovery behavior. Herein, we report a porous shape-memory polymer/hydrogel actuator (SMP-Net gel) that transforms fixed-force shape recovery into ion-programmable actuation. The actuator integrates a thermally programmable glycerol-polycaprolactone methacrylic anhydride (GPCL-MA) scaffold with an interpenetrating PAM/PVA hydrogel network. The porous scaffold determines the macroscopic shape-memory trajectory, whereas the confined hydrogel functions as a Hofmeister-responsive internal force reservoir. Ion-specific regulation of chain aggregation and hydrogen bonding enables broad adjustment of the mechanical state, with strain and stress tunable over 43%-140% and 0.83-1.80 MPa, respectively, while simultaneously accelerating or retarding NIR-triggered shape recovery. This dual-driving architecture further supports reversible shape programming, controllable bending amplitude, recovery-time regulation, and spatially selective deformation under localized NIR irradiation. Remote gripping, release, and multistep motion demonstrate the capability of the SMP-Net gel for complex actuation tasks. This work establishes a general strategy for integrating shape-memory scaffolds with ion-regulated soft networks, opening a new route toward adaptive actuators, biomimetic machines, and intelligent soft robotic systems.