Please use this identifier to cite or link to this item:
https://hdl.handle.net/10356/181222
Title: | Bioinspired capillary transistors | Authors: | Liu, Xiaojiang Gao, Ming Li, Boyuan Liu, Ruoyu Chong, Zhejun Gu, Zhongze Zhou, Kun |
Keywords: | Engineering | Issue Date: | 2024 | Source: | Liu, X., Gao, M., Li, B., Liu, R., Chong, Z., Gu, Z. & Zhou, K. (2024). Bioinspired capillary transistors. Advanced Materials, 36(41), e2310797-. https://dx.doi.org/10.1002/adma.202310797 | Project: | IAF-ICP | Journal: | Advanced Materials | Abstract: | Inspired by the unidirectional liquid spreading on Nepenthes peristome, Araucaria leaf, butterfly wings, etc., various microfluidic devices have been developed for water collection, irrigation, physical/chemical reaction, and oil-water separation. Despite extensive progress, most natural and artificial structures fail to enhance the Laplace pressure difference or capillary force, thus suffering from a low unidirectional capillary height (<30 mm). In this work, asymmetric re-entrant structures with long overhangs and connected forward/lateral microchannels are fabricated by 3D printing, resulting in a significantly increased unidirectional capillary height of 102.3 mm for water, which approximately corresponds to the theoretical limit. The overhangs can partially overlap the forward microchannels of the front structures without direct contact, thus enhancing the Laplace pressure difference and capillary force simultaneously. Based on asymmetric and symmetric re-entrant structures, capillary transistors are proposed and realized to programmably adjust the capillary direction, height, and width, which are envisioned to function as switches/valves and amplifiers/attenuators for highly efficient liquid patterning, desalination, and biochemical microreaction in 3D space. | URI: | https://hdl.handle.net/10356/181222 | ISSN: | 0935-9648 | DOI: | 10.1002/adma.202310797 | Schools: | School of Mechanical and Aerospace Engineering | Research Centres: | HP-NTU Digital Manufacturing Corporate Lab Singapore Centre for 3D Printing |
Rights: | © 2024 Wiley-VCH GmbH. All rights reserved. | Fulltext Permission: | none | Fulltext Availability: | No Fulltext |
Appears in Collections: | MAE Journal Articles |
SCOPUSTM
Citations
50
2
Updated on Mar 19, 2025
Page view(s)
114
Updated on Mar 18, 2025
Google ScholarTM
Check
Altmetric
Items in DR-NTU are protected by copyright, with all rights reserved, unless otherwise indicated.