SinoGreenTech Academic Portal
HW
Verified CAS / Academic Author2 Decoded Studies

Prof. Hui-Ya Wang

School of Materials Science and Engineering, Beihang University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3721-y

Anisotropic Liquid Crystalline Hydrogel Actuators with Multi-Stimuli-Responsive Actuation and Multimodal Locomotion

Anisotropic hydrogels have attracted significant attention for applications in actuators, soft robotics, and artificial muscles due to their ability to undergo shape morphing and generate anisotropic responses under external stimuli. Here, we report a novel strategy for fabricating anisotropic hydrogels using liquid crystal polymers (LCPs). A series of liquid crystal polyester-polyethylene glycol (LCP-PEG) multiblock copolymers with varying PEG block molecular weights were synthesized via one-pot melt-polycondensation. Upon stretching, LCP-PEG forms a stable, oriented microphase-separated lamellar structure, which enables reversible shape changes driven by melting-induced contraction and crystallization-induced expansion of the oriented PEG crystals. This unique structure imparts anisotropic swelling behavior to the films when exposed to water or humidity. The oriented microphase-separated lamellar structure confers high fracture strength (11.2–14.7 MPa), fracture strain (1600%–2100%), fracture energy (1.7–2.8 MJ m−2), and Young’s modulus (51.2–139.9 MPa). Furthermore, the anisotropic LCP-PEG hydrogel actuators exhibit versatile locomotion modes, including object grabbing and transfer between water and air, object gripping in rainy conditions, walking and somersaulting on ratchet-patterned bases under humidity stimuli, and slope climbing through somersault locomotion under salty water stimuli. These results demonstrate the potential of LCP-based anisotropic hydrogels for advanced soft robotic applications.

SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3903-4

Near-Perfect Light-Capture Materials with High Environmental Stability

Cross-wavelength near-perfect light capture technology is crucial in various fields, including spectroscopy, energy conversion, and electromagnetic control. Nevertheless, the primary challenge in broadband absorption is effectively coordinating the intrinsic response behavior of various electromagnetic waves across the nanometer-centimeter scale when interacting with matter. By adopting a multi-scale structural design strategy, the carbon-zirconium heterointerface is integrated into the macroscopic periodic unit cell (PUC) to develop an ultra-wideband light capture material. The optical coupling effect, strengthened by electronic transitions, molecular motion, and spatial scattering effects, endows ZC-PUC with exceptional light-capture performance ranging from ultraviolet to microwave frequencies. Specifically, the ZC-PUC absorber possesses a near-perfect absorption rate of 95.7% across the ultraviolet-visible-infrared spectrum (190–2500 nm), and an effective absorption coverage of 99.99% in the microwave and terahertz bands (1997.9 GHz). More importantly, the as-prepared material maintains the morphology structure and physical phase even when exposed to an alkaline or acidic environment for 365 days and simultaneously possesses stable light capture properties. The easily scalable approach retains excellent structural stability and ultra-wideband light trapping capability under extreme conditions, offering a versatile platform for the development of next-generation devices.