Enhanced Fog Harvesting via Synergistic Regulation of the Entire Process on a Multi-Bioinspired Patterned Surface

Freshwater scarcity has become an urgent global issue. Bioinspired fog harvesting is a promising route to freshwater supply, whereas conventional bioinspired surfaces merely optimize partial procedures independently, severely restricting fog harvesting efficiency. Herein, inspired by cactus spines, Sarracenia trichomes, spider silk, and leaf veins, we rationally designed a multi-bioinspired patterned surface (MBPS) featuring nanoneedles, wettability-gradient microchannels, and vein-like networks to synergistically regulate the entire harvesting process. Specifically, once a continuous water film forms within the microchannels, fog droplets effectively captured by dense nanoneedles, upon contacting the hydrophilic pattern, are rapidly drawn into the microchannels and directionally transported toward the designated collection area via the interconnected network under the combined effect of multiple driving forces. This unique harvesting mode synergizes fog capture, droplet coalescence, and transport, endowing the MBPS with a high efficiency of 2.52 g cm-2 h-1 as well as excellent cyclic stability. Such multi-effect synergy further facilitates efficient fog harvesting.

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Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-06
DOI
https://doi.org/10.1021/acsami.6c14930
Primary Topic
Surface Modification and Superhydrophobicity
Type
article
Field-Weighted Citation Impact
0.00

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article

Enhanced Fog Harvesting via Synergistic Regulation of the Entire Process on a Multi-Bioinspired Patterned Surface

Yongmei Zheng, Yongping Hou, Zhuan Chen, Hongtao Liu et al.
ACS Applied Materials & Interfaces
Surface Modification and Superhydrophobicity
article

Enhanced Fog Harvesting via Synergistic Regulation of the Entire Process on a Multi-Bioinspired Patterned Surface

Yongmei Zheng, Yongping Hou, Zhuan Chen, Hongtao Liu, Fei Wang, Xinping Wang, Wei Sun, Junqiu Zhang
article en

Abstract

Freshwater scarcity has become an urgent global issue. Bioinspired fog harvesting is a promising route to freshwater supply, whereas conventional bioinspired surfaces merely optimize partial procedures independently, severely restricting fog harvesting efficiency. Herein, inspired by cactus spines, Sarracenia trichomes, spider silk, and leaf veins, we rationally designed a multi-bioinspired patterned surface (MBPS) featuring nanoneedles, wettability-gradient microchannels, and vein-like networks to synergistically regulate the entire harvesting process. Specifically, once a continuous water film forms within the microchannels, fog droplets effectively captured by dense nanoneedles, upon contacting the hydrophilic pattern, are rapidly drawn into the microchannels and directionally transported toward the designated collection area via the interconnected network under the combined effect of multiple driving forces. This unique harvesting mode synergizes fog capture, droplet coalescence, and transport, endowing the MBPS with a high efficiency of 2.52 g cm-2 h-1 as well as excellent cyclic stability. Such multi-effect synergy further facilitates efficient fog harvesting.

ACS Applied Materials & Interfaces
Jilin University (CN), Jilin Medical University (CN), Beihang University (CN)
National Natural Science Foundation of China, Aeronautical Science Foundation of China
Clean water and sanitation
Openalex Percentile: Top 24%
Surface Modification and Superhydrophobicity
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