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Drops on a Superhydrophobic Hole Hanging On under Evaporation

[Image: see text] Drops with larger volumes placed over a superhydrophobic (SH) surface with a hole do not fall through unless they are evaporated to a size that is small enough. This feature offers the ability to preconcentrate samples for biochemical analysis. In this work, the influence of pinnin...

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Autores principales: Chung, Dwayne Chung Kim, Huynh, So Hung, Katariya, Mayur, Chan, Aaron Yin Chun, Wang, Shufen, Jiang, Xuchuan, Muradoglu, Murat, Liew, Oi Wah, Ng, Tuck Wah
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2017
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6644627/
https://www.ncbi.nlm.nih.gov/pubmed/31457866
http://dx.doi.org/10.1021/acsomega.7b01114
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author Chung, Dwayne Chung Kim
Huynh, So Hung
Katariya, Mayur
Chan, Aaron Yin Chun
Wang, Shufen
Jiang, Xuchuan
Muradoglu, Murat
Liew, Oi Wah
Ng, Tuck Wah
author_facet Chung, Dwayne Chung Kim
Huynh, So Hung
Katariya, Mayur
Chan, Aaron Yin Chun
Wang, Shufen
Jiang, Xuchuan
Muradoglu, Murat
Liew, Oi Wah
Ng, Tuck Wah
author_sort Chung, Dwayne Chung Kim
collection PubMed
description [Image: see text] Drops with larger volumes placed over a superhydrophobic (SH) surface with a hole do not fall through unless they are evaporated to a size that is small enough. This feature offers the ability to preconcentrate samples for biochemical analysis. In this work, the influence of pinning on the behavior of drops placed on a 0.1 mm thick SH substrate with a 2 mm diameter hole as they evaporated was investigated. With 16 μL of water dispensed, the sessile drop component volume was initially higher than that of the overhanging drop component and maintained this until the later stages where almost identical shapes were attained and full evaporation was achieved without falling off the hole. With 15 μL of water dispensed, the volume of the sessile drop was initially higher than that of the overhanging drop component but the liquid body was able to squeeze through the hole after 180 s due to the contact line not having sufficient pinning strength when it encountered the edge of the hole. This resulted in the liquid body either falling through the hole or remaining pinned with an oval-like shape. When it did not fall-off, the liquid body had volume and contact angle characteristics for the sessile drop and overhanging drop components that were reversed. In the later stages, however, nearly identical shapes were again attained and full evaporation was achieved without falling off the hole. The effects of pinning, despite the substrate being SH, offer another path toward achieving practical outcomes with liquid bodies without the need for chemical surface functionalization. Similarities and differences could be seen in the behavior of a sessile drop on a SH plate that was inclined at 30° to the horizontal and evaporated.
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spelling pubmed-66446272019-08-27 Drops on a Superhydrophobic Hole Hanging On under Evaporation Chung, Dwayne Chung Kim Huynh, So Hung Katariya, Mayur Chan, Aaron Yin Chun Wang, Shufen Jiang, Xuchuan Muradoglu, Murat Liew, Oi Wah Ng, Tuck Wah ACS Omega [Image: see text] Drops with larger volumes placed over a superhydrophobic (SH) surface with a hole do not fall through unless they are evaporated to a size that is small enough. This feature offers the ability to preconcentrate samples for biochemical analysis. In this work, the influence of pinning on the behavior of drops placed on a 0.1 mm thick SH substrate with a 2 mm diameter hole as they evaporated was investigated. With 16 μL of water dispensed, the sessile drop component volume was initially higher than that of the overhanging drop component and maintained this until the later stages where almost identical shapes were attained and full evaporation was achieved without falling off the hole. With 15 μL of water dispensed, the volume of the sessile drop was initially higher than that of the overhanging drop component but the liquid body was able to squeeze through the hole after 180 s due to the contact line not having sufficient pinning strength when it encountered the edge of the hole. This resulted in the liquid body either falling through the hole or remaining pinned with an oval-like shape. When it did not fall-off, the liquid body had volume and contact angle characteristics for the sessile drop and overhanging drop components that were reversed. In the later stages, however, nearly identical shapes were again attained and full evaporation was achieved without falling off the hole. The effects of pinning, despite the substrate being SH, offer another path toward achieving practical outcomes with liquid bodies without the need for chemical surface functionalization. Similarities and differences could be seen in the behavior of a sessile drop on a SH plate that was inclined at 30° to the horizontal and evaporated. American Chemical Society 2017-09-27 /pmc/articles/PMC6644627/ /pubmed/31457866 http://dx.doi.org/10.1021/acsomega.7b01114 Text en Copyright © 2017 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes.
spellingShingle Chung, Dwayne Chung Kim
Huynh, So Hung
Katariya, Mayur
Chan, Aaron Yin Chun
Wang, Shufen
Jiang, Xuchuan
Muradoglu, Murat
Liew, Oi Wah
Ng, Tuck Wah
Drops on a Superhydrophobic Hole Hanging On under Evaporation
title Drops on a Superhydrophobic Hole Hanging On under Evaporation
title_full Drops on a Superhydrophobic Hole Hanging On under Evaporation
title_fullStr Drops on a Superhydrophobic Hole Hanging On under Evaporation
title_full_unstemmed Drops on a Superhydrophobic Hole Hanging On under Evaporation
title_short Drops on a Superhydrophobic Hole Hanging On under Evaporation
title_sort drops on a superhydrophobic hole hanging on under evaporation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6644627/
https://www.ncbi.nlm.nih.gov/pubmed/31457866
http://dx.doi.org/10.1021/acsomega.7b01114
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