Bioinspired Elastic Liquid Transistor

Directional liquid transport with controllable spreading speed remains challenging, as most existing systems focus on transport direction rather than speed regulation. Inspired by the regional spreading-speed differences governed by parametrically distinct trichomes on the inner pitcher wall of Heliamphora nutans, we fabricated a series of artificial ciliated surfaces with independently controlled height and observed distinct water spreading speeds across these surfaces. To understand the mechanism, we captured side-view micrographs of the advancing liquid front, which revealed that spreading is primarily driven by capillary wicking along the sidewalls of neighboring cilia. Based on this mechanistic insight, we developed a normalized predictive model, which was subsequently validated against a broader set of height-spacing combinations, confirming its generality. Guided by this understanding, we report a bioinspired elastic liquid transistor (BELT) that achieves real-time, stepless regulation of liquid transport speed on an open surface. Beyond unidirectional gating, the BELT enables coordinated control of spreading direction and speed in orthogonal directions. Owing to its elasticity, the BELT retains its gating function under twisting deformation, demonstrating its compatibility with nonplanar and soft surfaces.

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Publication Details

Journal
Small
Published
2026-09-04
DOI
https://doi.org/10.1002/smll.75516
Primary Topic
Surface Modification and Superhydrophobicity
Type
article
Field-Weighted Citation Impact
0.00

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article

Bioinspired Elastic Liquid Transistor

Cunming Yu, Ziwei Guo, Shihao Guo, Jinke Zhang et al.
Small
Surface Modification and Superhydrophobicity
article

Bioinspired Elastic Liquid Transistor

Cunming Yu, Ziwei Guo, Shihao Guo, Jinke Zhang, Fuyuan Gui, Chaoke Liu, Yi Han, Yunxun Liu
article en

Abstract

Directional liquid transport with controllable spreading speed remains challenging, as most existing systems focus on transport direction rather than speed regulation. Inspired by the regional spreading-speed differences governed by parametrically distinct trichomes on the inner pitcher wall of Heliamphora nutans, we fabricated a series of artificial ciliated surfaces with independently controlled height and observed distinct water spreading speeds across these surfaces. To understand the mechanism, we captured side-view micrographs of the advancing liquid front, which revealed that spreading is primarily driven by capillary wicking along the sidewalls of neighboring cilia. Based on this mechanistic insight, we developed a normalized predictive model, which was subsequently validated against a broader set of height-spacing combinations, confirming its generality. Guided by this understanding, we report a bioinspired elastic liquid transistor (BELT) that achieves real-time, stepless regulation of liquid transport speed on an open surface. Beyond unidirectional gating, the BELT enables coordinated control of spreading direction and speed in orthogonal directions. Owing to its elasticity, the BELT retains its gating function under twisting deformation, demonstrating its compatibility with nonplanar and soft surfaces.

Small
Beihang University (CN)
National Natural Science Foundation of China, Beihang University, Fundamental Research Funds for the Central Universities
Openalex Percentile: Top 25%
Surface Modification and Superhydrophobicity
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Bioinspired Elastic Liquid Transistor — Cunming Yu, Ziwei Guo, et al. · Small (2026) | TGRS Research Map | TGRS