A Scalable, Robust, and Bioinspired Liquid Diode for Ultrafast Unidirectional Absorption

Efficient management of biofluids on body surfaces is essential for advanced medical protection and healthcare. While conventional designs often rely solely on unidirectional penetration, our previously established model of a microfiber-covered porous substrate leverages synergistic interplay between lateral capillary forces and vertical permeation to enhance absorption kinetics by over 150-fold. However, scalable fabrication and mechanical robustness of such a structure remain challenging. Here, we present a semi-continuous manufacturing strategy based on electrostatic flocking combined with non-solvent-induced phase separation to produce a trilayered composite consisting of a micro-fiber array, a porous adhesive interlayer, and a fibrous support (MA-PA-FS). We systematically elucidate the role of each layer in guiding rapid liquid absorption and enhancing structural integrity. The optimized MA-PA-FS composite achieves ultrafast unidirectional water absorption (5 µL in 9.3 ms)-three orders of magnitude faster than a porous control surface (90.0 s)-and also effectively absorbs viscous biological fluids such as fresh porcine blood. Besides exceptional liquid absorption, the material exhibits high moisture permeability and strong mechanical durability. This study provides a scientific foundation for designing scalable, high-performance biofluid-handling interfaces, with promising potential in medical textiles, protective gear, and related health technologies.

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Publication Details

Journal
Advanced Materials
Published
2026-08-25
DOI
https://doi.org/10.1002/adma.74548
Primary Topic
3D Printing in Biomedical Research
Type
article
Field-Weighted Citation Impact
0.00

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article

A Scalable, Robust, and Bioinspired Liquid Diode for Ultrafast Unidirectional Absorption

Yu‐Qiong Luo, Jie Ju, Xi Yao, Ximeng Zhang et al.
Advanced Materials
3D Printing in Biomedical Research
article

A Scalable, Robust, and Bioinspired Liquid Diode for Ultrafast Unidirectional Absorption

Yu‐Qiong Luo, Jie Ju, Xi Yao, Ximeng Zhang, Tianzhi Li, Ming Li, Yonghua Li, Lei Jiang
article en

Abstract

Efficient management of biofluids on body surfaces is essential for advanced medical protection and healthcare. While conventional designs often rely solely on unidirectional penetration, our previously established model of a microfiber-covered porous substrate leverages synergistic interplay between lateral capillary forces and vertical permeation to enhance absorption kinetics by over 150-fold. However, scalable fabrication and mechanical robustness of such a structure remain challenging. Here, we present a semi-continuous manufacturing strategy based on electrostatic flocking combined with non-solvent-induced phase separation to produce a trilayered composite consisting of a micro-fiber array, a porous adhesive interlayer, and a fibrous support (MA-PA-FS). We systematically elucidate the role of each layer in guiding rapid liquid absorption and enhancing structural integrity. The optimized MA-PA-FS composite achieves ultrafast unidirectional water absorption (5 µL in 9.3 ms)-three orders of magnitude faster than a porous control surface (90.0 s)-and also effectively absorbs viscous biological fluids such as fresh porcine blood. Besides exceptional liquid absorption, the material exhibits high moisture permeability and strong mechanical durability. This study provides a scientific foundation for designing scalable, high-performance biofluid-handling interfaces, with promising potential in medical textiles, protective gear, and related health technologies.

Advanced Materials
Henan University (CN), Henan University of Engineering (CN), Technical Institute of Physics and Chemistry (CN)
National Natural Science Foundation of China, Natural Science Foundation of Henan Province
Openalex Percentile: Top 19%
3D Printing in Biomedical Research
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