Bioinspired Surface Enabled by Anisotropic Pyramid Structure Arrays for Directional Liquid Self‐Transport

ABSTRACT Inspired by the phenomenon of directional liquid transport in natural organisms, various bionic surfaces with customized topological structures have been designed and fabricated, contributing to advances in such fields as microfluidics, microreactors, energy harvesting, biomedicine, etc. Despite extensive progress, bionic surfaces with directional liquid self‐transport capabilities still suffer from high technical thresholds, cumbersome fabrication processes, and contamination‐induced failure, limiting their widespread applications. In this work, a bioinspired surface with anisotropic inverted pyramid groove arrays was developed to achieve directional self‐transport of diverse liquids, from water to blood. Bioinspired by the nepenthes alata peristome, a discretely anisotropic inverted pyramid model was theoretically constructed, and then the surface with inverted pyramid groove arrays was efficiently and simply prepared via three‐dimensional (3D) printing and cast molding. This bioinspired surface exhibited rapid, long‐distance, and continuous liquid self‐transport with high unidirectionality under the optimal structural parameters. Moreover, this bioinspired surface was innovatively applied to achieve efficient removal of blood cells from diluted blood without complex operations, providing a proof‐of‐concept foundation for future applications of bioinspired surfaces in microfluidics, plasma separation, and biomedical detection.

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Publication Details

Journal
Advanced Materials Technologies
Published
2026-09-18
DOI
https://doi.org/10.1002/admt.71321
Primary Topic
Surface Modification and Superhydrophobicity
Type
article
Field-Weighted Citation Impact
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Bioinspired Surface Enabled by Anisotropic Pyramid Structure Arrays for Directional Liquid Self‐Transport

Shengjun An, Shegan Gao, Zhao Meng-qian, Zhang Hu-chen et al.
Advanced Materials Technologies
Surface Modification and Superhydrophobicity
article

Bioinspired Surface Enabled by Anisotropic Pyramid Structure Arrays for Directional Liquid Self‐Transport

Shengjun An, Shegan Gao, Zhao Meng-qian, Zhang Hu-chen, Chaowei Sun, Yuyin Xu, Yi‐Ke Wang, Li‐Yun Zheng, Jun‐Yue Chen, Si‐Yu Tian, Fan Zhang, Hong‐Xing Xu, Pin Lv, Yan‐Yan Sun
article en

Abstract

ABSTRACT Inspired by the phenomenon of directional liquid transport in natural organisms, various bionic surfaces with customized topological structures have been designed and fabricated, contributing to advances in such fields as microfluidics, microreactors, energy harvesting, biomedicine, etc. Despite extensive progress, bionic surfaces with directional liquid self‐transport capabilities still suffer from high technical thresholds, cumbersome fabrication processes, and contamination‐induced failure, limiting their widespread applications. In this work, a bioinspired surface with anisotropic inverted pyramid groove arrays was developed to achieve directional self‐transport of diverse liquids, from water to blood. Bioinspired by the nepenthes alata peristome, a discretely anisotropic inverted pyramid model was theoretically constructed, and then the surface with inverted pyramid groove arrays was efficiently and simply prepared via three‐dimensional (3D) printing and cast molding. This bioinspired surface exhibited rapid, long‐distance, and continuous liquid self‐transport with high unidirectionality under the optimal structural parameters. Moreover, this bioinspired surface was innovatively applied to achieve efficient removal of blood cells from diluted blood without complex operations, providing a proof‐of‐concept foundation for future applications of bioinspired surfaces in microfluidics, plasma separation, and biomedical detection.

Advanced Materials Technologies
Henan University of Science and Technology (CN), Zhengzhou University of Light Industry (CN), Zhengzhou University (CN), Henan Academy of Sciences (CN), Henan University of Engineering (CN), Hebei University of Chinese Medicine (CN), First Affiliated Hospital of Henan University of Science and Technology (CN), Henan Cancer Hospital (CN), Shandong Institute for Product Quality Inspection (CN), Zhengzhou Institute of Emerging Industrial Technology (CN)
Affordable and clean energy
Openalex Percentile: Top 26%
Surface Modification and Superhydrophobicity
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