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WY
Verified CAS / Academic Author2 Decoded Studies

Prof. WANG Yu-Zhong

Sichuan University

Research Publications & English Decoded Briefs

Showing 2 publications
SCIENCE CHINA Materials2026DOI: 10.1007/s40843-025-3616-8

Performance enhancement, negative stiffness structural characterization, and energy absorption mechanisms of 3D-printed continuous carbon fiber reinforced composites

Negative stiffness (NS) structures exploit multi-stable mechanisms to achieve energy absorption, yet their practical application is limited by material and manufacturing constraints that compromise load-bearing capacity, reusability, and energy absorption efficiency. This study addresses these limitations by employing continuous carbon fiber reinforced thermoplastic polymers (CCFRTP) and three-dimensional (3D) printing to fabricate NS structures with cosine beam cells. A wet twisting method for continuous carbon fiber (CCF) was developed to enhance mechanical properties and elucidate failure behaviors and interfacial adhesion mechanisms. The resulting CCF/PLA/PVDF composites exhibited significant improvements in mechanical properties compared to untreated counterparts, with failure analysis revealing characteristic fiber breakage due to enhanced interfacial adhesion, as opposed to fiber pull-out and irregular fracture in untreated samples. A one-stroke path planning model was used to investigate bistability principles and energy absorption mechanisms. Displacement-controlled loading/unloading experiments assessed energy absorption in both energy-locked and repetitive modes. A dual-unit assembly structure was fabricated to validate the feasibility of a negative stiffness honeycomb structure. Composite layup simulations via Abaqus confirmed the deformation process and energy absorption mechanisms. The findings demonstrate that CCFRTP-based NS structures offer considerable potential for large deformation energy absorption applications in aerospace and naval fields.

SCIENCE CHINA Materials2025DOI: 10.1007/s40843-025-3523-1

A Triphasic Interface-Induced Confined-Deposition Strategy Toward 3D Micro-Heterogeneous Wetting Surface

Natural surfaces with heterogeneous wettability inspire functional material innovations. Lubricant-infused slipperiness and heterogeneous three-dimensional (3D) micro-textures display diversified interface features and spatial topologies. However, constructing well-defined heterogeneous wettability on 3D micro-textures to create stable heterogeneous slippery surfaces remains challenging. Here, a 3D micro-heterogeneous wetting surface, featuring a lubricant sea dotted with superhydrophilic micro-islands, was fabricated via an innovative method without costly techniques. Tunable micro-island dimensions are supported for stable lubricant retention and programmable slipperiness. The flexibility and vertical heterogeneity enable the film advanced functions of deformation-responsive convertible adhesion and high-performance water collection. This work can greatly boost interfacial materials and extend their application in intelligent microfluidics and sustainable systems.