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Lee, Dong Woog
Interfacial Physics and Chemistry Lab.
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dc.citation.endPage 8075 -
dc.citation.number 32 -
dc.citation.startPage 8070 -
dc.citation.title PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA -
dc.citation.volume 115 -
dc.contributor.author Seo, Dongjin -
dc.contributor.author Schrader, Alex M. -
dc.contributor.author Chen, Szu-Ying -
dc.contributor.author Kaufman, Yair -
dc.contributor.author Christiani, Thomas R. -
dc.contributor.author Page, Steven H. -
dc.contributor.author Koenig, Peter H. -
dc.contributor.author Gizaw, Yonas -
dc.contributor.author Lee, Dong Woog -
dc.contributor.author Israelachvili, Jacob. N. -
dc.date.accessioned 2023-12-21T20:20:55Z -
dc.date.available 2023-12-21T20:20:55Z -
dc.date.created 2018-07-30 -
dc.date.issued 2018-08 -
dc.description.abstract Understanding the fundamental wetting behavior of liquids on surfaces with pores or cavities provides insights into the wetting phenomena associated with rough or patterned surfaces, such as skin and fabrics, as well as the development of everyday products such as ointments and paints, and industrial applications such as enhanced oil recovery and pitting during chemical mechanical polishing. We have studied, both experimentally and theoretically, the dynamics of the transitions from the unfilled/partially filled (Cassie-Baxter) wetting state to the fully filled (Wenzel) wetting state on intrinsically hydrophilic surfaces (intrinsic water contact angle <90 degrees, where the Wenzel state is always the thermodynamically favorable state, while a temporary metastable Cassie-Baxter state can also exist) to determine the variables that control the rates of such transitions. We prepared silicon wafers with cylindrical cavities of different geometries and immersed them in bulk water. With bright-field and confocal fluorescence microscopy, we observed the details of, and the rates associated with, water penetration into the cavities from the bulk. We find that unconnected, reentrant cavities (i.e., cavities that open up below the surface) have the slowest cavity-filling rates, while connected or non-reentrant cavities undergo very rapid transitions. Using these unconnected, reentrant cavities, we identified the variables that affect cavity-filling rates: (i) the intrinsic contact angle, (ii) the concentration of dissolved air in the bulk water phase (i.e., aeration), (iii) the liquid volatility that determines the rate of capillary condensation inside the cavities, and (iv) the presence of surfactants. -
dc.identifier.bibliographicCitation PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, v.115, no.32, pp.8070 - 8075 -
dc.identifier.doi 10.1073/pnas.1804437115 -
dc.identifier.issn 0027-8424 -
dc.identifier.scopusid 2-s2.0-85053526012 -
dc.identifier.uri https://scholarworks.unist.ac.kr/handle/201301/24450 -
dc.identifier.url http://www.pnas.org/content/115/32/8070 -
dc.identifier.wosid 000440982000031 -
dc.language 영어 -
dc.publisher NATL ACAD SCIENCES -
dc.title Rates of cavity filling by liquids -
dc.type Article -
dc.description.isOpenAccess FALSE -
dc.relation.journalWebOfScienceCategory Multidisciplinary Sciences -
dc.relation.journalResearchArea Science & Technology - Other Topics -
dc.description.journalRegisteredClass scie -
dc.description.journalRegisteredClass scopus -
dc.subject.keywordAuthor wetting transition -
dc.subject.keywordAuthor wetting dynamics -
dc.subject.keywordAuthor Wenzel -
dc.subject.keywordAuthor Cassie-Baxter -
dc.subject.keywordPlus OIL-REPELLENT SURFACES -
dc.subject.keywordPlus SUPERHYDROPHOBIC SURFACES -
dc.subject.keywordPlus FRACTAL STRUCTURE -
dc.subject.keywordPlus CONTACT ANGLES -
dc.subject.keywordPlus SOLID-SURFACES -
dc.subject.keywordPlus WATER -
dc.subject.keywordPlus CONDENSATION -
dc.subject.keywordPlus FABRICATION -
dc.subject.keywordPlus HYSTERESIS -
dc.subject.keywordPlus ADHESION -

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