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◆ Nature communications2026-08-27

Confined shear-induced structure discretization enables re-entrant super-repellent metals.

Xuanyao Wang, Yongjie Guo, Qianhao Xiao, Zhiyuan Zhang, Hao Jing, Liqun Wang, Yayong Wang, Mengfan Lv, Qing Wang, Yunlong Han, Yukui Cai, Jining Sun, Lei Zhang

一句话结论

Here, we present a one-step mechanical cutting strategy, termed confined shear-induced structure discretization (CSSD), to directly fabricate high-density re-entrant architectures on planar and curved metallic surfaces.

原始摘要(原文)
Re-entrant structures are fundamental to achieving robust liquid repellency, especially for low-surface-tension liquids. However, existing fabrication techniques often face a trade-off among mechanical durability, substrate geometry compatibility, large-area processing, and rapid production. Metals, with their inherent robustness, offer a promising substrate, but direct and efficient machining of metallic re-entrant structures remains a significant challenge. Here, we present a one-step mechanical cutting strategy, termed confined shear-induced structure discretization (CSSD), to directly fabricate high-density re-entrant architectures on planar and curved metallic surfaces. By designing a cave-trapezoid composite tool, we achieve a controlled transition from continuous ridges to discrete re-entrant units during ultra-precision diamond turning. The resulting metallic surfaces sustain a super-repellent Cassie-Baxter state for a broad range of liquids, exhibiting a water contact angle of 161.7 ± 2.2°, indicating non-wetting behavior. Notably, this approach enables rapid, large-area manufacturing, with a material removal rate of 1.068 mm3 s-1 over areas up to 1.5 × 104 mm2. The re-entrant textures retain sufficient structural features after 1000 abrasion cycles to recover superhydrophobicity. This geometry-guided strategy reveals a mechanism for the scalable fabrication of discrete microstructures and offers useful guidance for extending the approach to other machining modalities.
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Confined shear-induced structure discretization enables re-entrant super-repellent metals. — 科研速览 Science Skim