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Evaporation and condensation on two-tier superhydrophobic surfaces

Publication ,  Journal Article
Chen, CH; Cai, Q; Chen, CL
Published in: 2008 Proceedings of the ASME Micro/Nanoscale Heat Transfer International Conference, MNHT 2008
August 20, 2008

Superhydrophobic surfaces exhibit large contact angle and small hysteresis which promote liquid transport and enhance heat transfer. Here, liquid-vapor phase change behavior is reported on superhydrophobic surfaces with short carbon nanotubes deposited on micromachined posts, a two-tier texture mimicking the surface structure of lotus leaves. Compared to one-tier microtexture which energetically favors the Wenzel state, the two-tier texture with nanoscale roughness favors the Cassie state, the desired superhydrophobic state. During droplet evaporation, the two-tier texture delays the transition from Cassie to Wenzel state. Using two-tier texture with hexadeconethiol coating, continuous dropwise condensation was demonstrated for the first time on engineered superhydrophobic surfaces. © 2008 by ASME.

Duke Scholars

Published In

2008 Proceedings of the ASME Micro/Nanoscale Heat Transfer International Conference, MNHT 2008

DOI

Publication Date

August 20, 2008

Volume

PART B

Start / End Page

1021 / 1022
 

Citation

APA
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ICMJE
MLA
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Chen, C. H., Cai, Q., & Chen, C. L. (2008). Evaporation and condensation on two-tier superhydrophobic surfaces. 2008 Proceedings of the ASME Micro/Nanoscale Heat Transfer International Conference, MNHT 2008, PART B, 1021–1022. https://doi.org/10.1115/MNHT2008-52355

Published In

2008 Proceedings of the ASME Micro/Nanoscale Heat Transfer International Conference, MNHT 2008

DOI

Publication Date

August 20, 2008

Volume

PART B

Start / End Page

1021 / 1022