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PNA-Bi2S3@PDA Hydrogel with Dual High Mechanical Strength and Rapid Photothermal Actuation: Preparation and
Yixin Xu1, Yanli Wang1,2, Wenjing Qin1
1Materials Science and Engineering, Key Laboratory of Display Materials and Photoelectric Devices, Ministry of Education and Tianjin Key Laboratory for Photoelectric Materials and Devices, Tianjin University of Technology, Tianjin 300384, China.
Abstract:
Inspired by stimulus-responsive motions in natural organisms, numerous hydrogel actuators with diverse functionalities have been fabricated for soft robotics applications. However, integrating high mechanical strength with rapid shape-memory response remains a fundamental challenge in hydrogel-based actuation systems. This study addresses this gap by developing a photothermal-responsive poly(N-isopropylacrylamide)-acrylic acid (PNA) hydrogel incorporated with polydopamine-functionalized Bi2S3 nanoparticles (denoted as PNA-Bi2S3@PDA), which exhibits synergistic enhancement in mechanical robustness and actuation kinetics. The system leverages the narrow-bandgap semiconductor properties of Bi2S3 for efficient near-infrared photothermal conversion, while the surface-grafted PDA layer enables multifunctional hydrogen bonding with the PNA network. This dual-interaction strategy ensures homogeneous nanoparticle dispersion and achieves remarkable mechanical reinforcement─exhibiting 618% elongation at break and 183 kPa tensile strength, representing a 4.5-fold enhancement compared to unmodified hydrogels. The hydrogel demonstrates rapid programmable deformation under thermal and photonic stimuli, including 384° bending within 15 s in hot water (70 °C) and 73° bending within 30 s under NIR irradiation (808 nm, 0.6 W cm-2). Furthermore, it shows significant potential for applications in programmable actuation, temperature-regulated fluidic valves, thermal-responsive circuit switches, and soft robotic manipulators. Notably, its response speed surpasses conventional PNIPAM-based hydrogel actuators, providing a new paradigm for developing high-performance underwater photoresponsive soft actuators and advancing the field of intelligent flexible materials.
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