Loading…
Hydrophobicity of periodic structure with taper angle under pressure impact
Biomimetic periodic structures have garnered attention due to their excellent water repellency. The normal-taper angle, which is aspects of the cross-sectional structure, is important factor in achieving water repellency and pressure resistance; however, the underlying physical phenomenon has not be...
Saved in:
Published in: | Scientific reports 2024-12, Vol.14 (1), p.30228-13, Article 30228 |
---|---|
Main Authors: | , , |
Format: | Article |
Language: | English |
Subjects: | |
Citations: | Items that this one cites |
Online Access: | Get full text |
Tags: |
Add Tag
No Tags, Be the first to tag this record!
|
cited_by | |
---|---|
cites | cdi_FETCH-LOGICAL-c422t-afec5c636931891efc08a97ebe2c18a362835fe57c22988a3b797f6ee994f34f3 |
container_end_page | 13 |
container_issue | 1 |
container_start_page | 30228 |
container_title | Scientific reports |
container_volume | 14 |
creator | Goto, Ren Oshima, Yuki Yamaguchi, Masaki |
description | Biomimetic periodic structures have garnered attention due to their excellent water repellency. The normal-taper angle, which is aspects of the cross-sectional structure, is important factor in achieving water repellency and pressure resistance; however, the underlying physical phenomenon has not been fully explained. Moreover, once a surface becomes hydrophobic, it is difficult to measure the apparent contact angle. The purpose of this paper is to clarify the taper angle that provides high water repellency under pressure impact conditions by formulating the relationship between the taper angle and the height of a droplet bouncing, instead of traditional contact angles, using experimental results. We fabricated multiple samples with different taper angles and groove width/tooth width ratios, through micro-processing using a femtosecond-pulsed laser and a control algorithm, and investigated their effects on water repellency. By using height of a droplet bouncing as an evaluation parameter, we were able to effectively differentiate between taper angles in terms of water repellency. Additionally, we suggested that in the bouncing phenomenon, where droplets are given velocity by falling, the sidewall of the periodic structure and the taper angle affect liquid repellency. To explain this phenomenon, we proposed a pressured-taper angle model where a droplet is pressed against the taper angle. Based on both experimental findings and the pressured-taper angle model, a relationship between the equilibrium contact angle, the taper angle, and the lifting force angle was revealed. Moreover, using this pressured-taper angle model, the taper angle of the periodic structure to achieve maximum liquid repellency was estimated from the equilibrium contact angle of the base material. |
doi_str_mv | 10.1038/s41598-024-81778-0 |
format | article |
fullrecord | <record><control><sourceid>proquest_doaj_</sourceid><recordid>TN_cdi_doaj_primary_oai_doaj_org_article_55eb425a586d4826a2a094dcd2c65c3d</recordid><sourceformat>XML</sourceformat><sourcesystem>PC</sourcesystem><doaj_id>oai_doaj_org_article_55eb425a586d4826a2a094dcd2c65c3d</doaj_id><sourcerecordid>3146519160</sourcerecordid><originalsourceid>FETCH-LOGICAL-c422t-afec5c636931891efc08a97ebe2c18a362835fe57c22988a3b797f6ee994f34f3</originalsourceid><addsrcrecordid>eNp9kUtv1DAUhS0EotXQP8ACRWLDJuB37BVCFdCKSt20a8txbmY8ysTBdkDz73GaUloWtSz56p7jz4-D0FuCPxLM1KfEidCqxpTXijRNqV6gU4q5qCmj9OWj-gSdpbTHZQiqOdGv0QnTklEt8Sn6cXHsYph2ofXO52MV-mqC6EPnXZVynF2eI1S_fd5V2RalsuN2gGoeu1JPEVJadH-YrMtv0KveDgnO7tcNuv329eb8or66_n55_uWqdpzSXNsenHCSSc2I0gR6h5XVDbRAHVGWSaqY6EE0jlKtSqNtdNNLAK15z8rcoMuV2wW7N1P0BxuPJlhv7hohbo2N2bsBjBDQciqsULLjikpLLda8cx11UjjWFdbnlTXN7QE6B2OOdngCfaqMfme24ZchRBLFSxQb9OGeEMPPGVI2B58cDIMdIczJMMKlIJrIxfr-P-s-zHEsf7W4sCKcNqK46OpyMaQUoX-4DcFmyd6s2ZuSvbnL3izod4_f8bDlb9LFwFZDKtK4hfjv7GewfwDqkLpK</addsrcrecordid><sourcetype>Open Website</sourcetype><iscdi>true</iscdi><recordtype>article</recordtype><pqid>3140814275</pqid></control><display><type>article</type><title>Hydrophobicity of periodic structure with taper angle under pressure impact</title><source>Publicly Available Content Database</source><source>PubMed Central</source><source>Free Full-Text Journals in Chemistry</source><source>Springer Nature - nature.com Journals - Fully Open Access</source><creator>Goto, Ren ; Oshima, Yuki ; Yamaguchi, Masaki</creator><creatorcontrib>Goto, Ren ; Oshima, Yuki ; Yamaguchi, Masaki</creatorcontrib><description>Biomimetic periodic structures have garnered attention due to their excellent water repellency. The normal-taper angle, which is aspects of the cross-sectional structure, is important factor in achieving water repellency and pressure resistance; however, the underlying physical phenomenon has not been fully explained. Moreover, once a surface becomes hydrophobic, it is difficult to measure the apparent contact angle. The purpose of this paper is to clarify the taper angle that provides high water repellency under pressure impact conditions by formulating the relationship between the taper angle and the height of a droplet bouncing, instead of traditional contact angles, using experimental results. We fabricated multiple samples with different taper angles and groove width/tooth width ratios, through micro-processing using a femtosecond-pulsed laser and a control algorithm, and investigated their effects on water repellency. By using height of a droplet bouncing as an evaluation parameter, we were able to effectively differentiate between taper angles in terms of water repellency. Additionally, we suggested that in the bouncing phenomenon, where droplets are given velocity by falling, the sidewall of the periodic structure and the taper angle affect liquid repellency. To explain this phenomenon, we proposed a pressured-taper angle model where a droplet is pressed against the taper angle. Based on both experimental findings and the pressured-taper angle model, a relationship between the equilibrium contact angle, the taper angle, and the lifting force angle was revealed. Moreover, using this pressured-taper angle model, the taper angle of the periodic structure to achieve maximum liquid repellency was estimated from the equilibrium contact angle of the base material.</description><identifier>ISSN: 2045-2322</identifier><identifier>EISSN: 2045-2322</identifier><identifier>DOI: 10.1038/s41598-024-81778-0</identifier><identifier>PMID: 39632960</identifier><language>eng</language><publisher>London: Nature Publishing Group UK</publisher><subject>631/57 ; 631/61/2049 ; 639/166/988 ; 639/624/1020/1095 ; Biomimetics ; Contact angle ; Control algorithms ; Droplet bouncing ; Femtosecond-pulsed laser ; Humanities and Social Sciences ; Hydrophobicity ; multidisciplinary ; Periodic structure ; Pressured-taper angle model ; Repellency ; Science ; Science (multidisciplinary) ; Taper angle</subject><ispartof>Scientific reports, 2024-12, Vol.14 (1), p.30228-13, Article 30228</ispartof><rights>The Author(s) 2024</rights><rights>2024. The Author(s).</rights><rights>Copyright Nature Publishing Group 2024</rights><rights>The Author(s) 2024 2024</rights><lds50>peer_reviewed</lds50><oa>free_for_read</oa><woscitedreferencessubscribed>false</woscitedreferencessubscribed><cites>FETCH-LOGICAL-c422t-afec5c636931891efc08a97ebe2c18a362835fe57c22988a3b797f6ee994f34f3</cites><orcidid>0009-0003-6648-1994 ; 0009-0003-3913-6204 ; 0000-0003-4177-761X</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://www.proquest.com/docview/3140814275/fulltextPDF?pq-origsite=primo$$EPDF$$P50$$Gproquest$$Hfree_for_read</linktopdf><linktohtml>$$Uhttps://www.proquest.com/docview/3140814275?pq-origsite=primo$$EHTML$$P50$$Gproquest$$Hfree_for_read</linktohtml><link.rule.ids>230,314,723,776,780,881,25732,27903,27904,36991,36992,44569,53769,53771,74872</link.rule.ids><backlink>$$Uhttps://www.ncbi.nlm.nih.gov/pubmed/39632960$$D View this record in MEDLINE/PubMed$$Hfree_for_read</backlink></links><search><creatorcontrib>Goto, Ren</creatorcontrib><creatorcontrib>Oshima, Yuki</creatorcontrib><creatorcontrib>Yamaguchi, Masaki</creatorcontrib><title>Hydrophobicity of periodic structure with taper angle under pressure impact</title><title>Scientific reports</title><addtitle>Sci Rep</addtitle><addtitle>Sci Rep</addtitle><description>Biomimetic periodic structures have garnered attention due to their excellent water repellency. The normal-taper angle, which is aspects of the cross-sectional structure, is important factor in achieving water repellency and pressure resistance; however, the underlying physical phenomenon has not been fully explained. Moreover, once a surface becomes hydrophobic, it is difficult to measure the apparent contact angle. The purpose of this paper is to clarify the taper angle that provides high water repellency under pressure impact conditions by formulating the relationship between the taper angle and the height of a droplet bouncing, instead of traditional contact angles, using experimental results. We fabricated multiple samples with different taper angles and groove width/tooth width ratios, through micro-processing using a femtosecond-pulsed laser and a control algorithm, and investigated their effects on water repellency. By using height of a droplet bouncing as an evaluation parameter, we were able to effectively differentiate between taper angles in terms of water repellency. Additionally, we suggested that in the bouncing phenomenon, where droplets are given velocity by falling, the sidewall of the periodic structure and the taper angle affect liquid repellency. To explain this phenomenon, we proposed a pressured-taper angle model where a droplet is pressed against the taper angle. Based on both experimental findings and the pressured-taper angle model, a relationship between the equilibrium contact angle, the taper angle, and the lifting force angle was revealed. Moreover, using this pressured-taper angle model, the taper angle of the periodic structure to achieve maximum liquid repellency was estimated from the equilibrium contact angle of the base material.</description><subject>631/57</subject><subject>631/61/2049</subject><subject>639/166/988</subject><subject>639/624/1020/1095</subject><subject>Biomimetics</subject><subject>Contact angle</subject><subject>Control algorithms</subject><subject>Droplet bouncing</subject><subject>Femtosecond-pulsed laser</subject><subject>Humanities and Social Sciences</subject><subject>Hydrophobicity</subject><subject>multidisciplinary</subject><subject>Periodic structure</subject><subject>Pressured-taper angle model</subject><subject>Repellency</subject><subject>Science</subject><subject>Science (multidisciplinary)</subject><subject>Taper angle</subject><issn>2045-2322</issn><issn>2045-2322</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2024</creationdate><recordtype>article</recordtype><sourceid>PIMPY</sourceid><sourceid>DOA</sourceid><recordid>eNp9kUtv1DAUhS0EotXQP8ACRWLDJuB37BVCFdCKSt20a8txbmY8ysTBdkDz73GaUloWtSz56p7jz4-D0FuCPxLM1KfEidCqxpTXijRNqV6gU4q5qCmj9OWj-gSdpbTHZQiqOdGv0QnTklEt8Sn6cXHsYph2ofXO52MV-mqC6EPnXZVynF2eI1S_fd5V2RalsuN2gGoeu1JPEVJadH-YrMtv0KveDgnO7tcNuv329eb8or66_n55_uWqdpzSXNsenHCSSc2I0gR6h5XVDbRAHVGWSaqY6EE0jlKtSqNtdNNLAK15z8rcoMuV2wW7N1P0BxuPJlhv7hohbo2N2bsBjBDQciqsULLjikpLLda8cx11UjjWFdbnlTXN7QE6B2OOdngCfaqMfme24ZchRBLFSxQb9OGeEMPPGVI2B58cDIMdIczJMMKlIJrIxfr-P-s-zHEsf7W4sCKcNqK46OpyMaQUoX-4DcFmyd6s2ZuSvbnL3izod4_f8bDlb9LFwFZDKtK4hfjv7GewfwDqkLpK</recordid><startdate>20241204</startdate><enddate>20241204</enddate><creator>Goto, Ren</creator><creator>Oshima, Yuki</creator><creator>Yamaguchi, Masaki</creator><general>Nature Publishing Group UK</general><general>Nature Publishing Group</general><general>Nature Portfolio</general><scope>C6C</scope><scope>NPM</scope><scope>AAYXX</scope><scope>CITATION</scope><scope>3V.</scope><scope>7X7</scope><scope>7XB</scope><scope>88A</scope><scope>88E</scope><scope>88I</scope><scope>8FE</scope><scope>8FH</scope><scope>8FI</scope><scope>8FJ</scope><scope>8FK</scope><scope>ABUWG</scope><scope>AEUYN</scope><scope>AFKRA</scope><scope>AZQEC</scope><scope>BBNVY</scope><scope>BENPR</scope><scope>BHPHI</scope><scope>CCPQU</scope><scope>DWQXO</scope><scope>FYUFA</scope><scope>GHDGH</scope><scope>GNUQQ</scope><scope>HCIFZ</scope><scope>K9.</scope><scope>LK8</scope><scope>M0S</scope><scope>M1P</scope><scope>M2P</scope><scope>M7P</scope><scope>PIMPY</scope><scope>PQEST</scope><scope>PQQKQ</scope><scope>PQUKI</scope><scope>PRINS</scope><scope>Q9U</scope><scope>7X8</scope><scope>5PM</scope><scope>DOA</scope><orcidid>https://orcid.org/0009-0003-6648-1994</orcidid><orcidid>https://orcid.org/0009-0003-3913-6204</orcidid><orcidid>https://orcid.org/0000-0003-4177-761X</orcidid></search><sort><creationdate>20241204</creationdate><title>Hydrophobicity of periodic structure with taper angle under pressure impact</title><author>Goto, Ren ; Oshima, Yuki ; Yamaguchi, Masaki</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c422t-afec5c636931891efc08a97ebe2c18a362835fe57c22988a3b797f6ee994f34f3</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2024</creationdate><topic>631/57</topic><topic>631/61/2049</topic><topic>639/166/988</topic><topic>639/624/1020/1095</topic><topic>Biomimetics</topic><topic>Contact angle</topic><topic>Control algorithms</topic><topic>Droplet bouncing</topic><topic>Femtosecond-pulsed laser</topic><topic>Humanities and Social Sciences</topic><topic>Hydrophobicity</topic><topic>multidisciplinary</topic><topic>Periodic structure</topic><topic>Pressured-taper angle model</topic><topic>Repellency</topic><topic>Science</topic><topic>Science (multidisciplinary)</topic><topic>Taper angle</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Goto, Ren</creatorcontrib><creatorcontrib>Oshima, Yuki</creatorcontrib><creatorcontrib>Yamaguchi, Masaki</creatorcontrib><collection>SpringerOpen</collection><collection>PubMed</collection><collection>CrossRef</collection><collection>ProQuest Central (Corporate)</collection><collection>Health & Medical Collection</collection><collection>ProQuest Central (purchase pre-March 2016)</collection><collection>Biology Database (Alumni Edition)</collection><collection>Medical Database (Alumni Edition)</collection><collection>Science Database (Alumni Edition)</collection><collection>ProQuest SciTech Collection</collection><collection>ProQuest Natural Science Collection</collection><collection>Hospital Premium Collection</collection><collection>Hospital Premium Collection (Alumni Edition)</collection><collection>ProQuest Central (Alumni) (purchase pre-March 2016)</collection><collection>ProQuest Central (Alumni)</collection><collection>ProQuest One Sustainability</collection><collection>ProQuest Central</collection><collection>ProQuest Central Essentials</collection><collection>Biological Science Collection</collection><collection>ProQuest Databases</collection><collection>ProQuest Natural Science Collection</collection><collection>ProQuest One Community College</collection><collection>ProQuest Central</collection><collection>Health Research Premium Collection</collection><collection>Health Research Premium Collection (Alumni)</collection><collection>ProQuest Central Student</collection><collection>SciTech Premium Collection</collection><collection>ProQuest Health & Medical Complete (Alumni)</collection><collection>ProQuest Biological Science Collection</collection><collection>Health & Medical Collection (Alumni Edition)</collection><collection>Medical Database</collection><collection>Science Database (ProQuest)</collection><collection>Biological Science Database</collection><collection>Publicly Available Content Database</collection><collection>ProQuest One Academic Eastern Edition (DO NOT USE)</collection><collection>ProQuest One Academic</collection><collection>ProQuest One Academic UKI Edition</collection><collection>ProQuest Central China</collection><collection>ProQuest Central Basic</collection><collection>MEDLINE - Academic</collection><collection>PubMed Central (Full Participant titles)</collection><collection>DOAJ: Directory of Open Access Journals</collection><jtitle>Scientific reports</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Goto, Ren</au><au>Oshima, Yuki</au><au>Yamaguchi, Masaki</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Hydrophobicity of periodic structure with taper angle under pressure impact</atitle><jtitle>Scientific reports</jtitle><stitle>Sci Rep</stitle><addtitle>Sci Rep</addtitle><date>2024-12-04</date><risdate>2024</risdate><volume>14</volume><issue>1</issue><spage>30228</spage><epage>13</epage><pages>30228-13</pages><artnum>30228</artnum><issn>2045-2322</issn><eissn>2045-2322</eissn><abstract>Biomimetic periodic structures have garnered attention due to their excellent water repellency. The normal-taper angle, which is aspects of the cross-sectional structure, is important factor in achieving water repellency and pressure resistance; however, the underlying physical phenomenon has not been fully explained. Moreover, once a surface becomes hydrophobic, it is difficult to measure the apparent contact angle. The purpose of this paper is to clarify the taper angle that provides high water repellency under pressure impact conditions by formulating the relationship between the taper angle and the height of a droplet bouncing, instead of traditional contact angles, using experimental results. We fabricated multiple samples with different taper angles and groove width/tooth width ratios, through micro-processing using a femtosecond-pulsed laser and a control algorithm, and investigated their effects on water repellency. By using height of a droplet bouncing as an evaluation parameter, we were able to effectively differentiate between taper angles in terms of water repellency. Additionally, we suggested that in the bouncing phenomenon, where droplets are given velocity by falling, the sidewall of the periodic structure and the taper angle affect liquid repellency. To explain this phenomenon, we proposed a pressured-taper angle model where a droplet is pressed against the taper angle. Based on both experimental findings and the pressured-taper angle model, a relationship between the equilibrium contact angle, the taper angle, and the lifting force angle was revealed. Moreover, using this pressured-taper angle model, the taper angle of the periodic structure to achieve maximum liquid repellency was estimated from the equilibrium contact angle of the base material.</abstract><cop>London</cop><pub>Nature Publishing Group UK</pub><pmid>39632960</pmid><doi>10.1038/s41598-024-81778-0</doi><tpages>13</tpages><orcidid>https://orcid.org/0009-0003-6648-1994</orcidid><orcidid>https://orcid.org/0009-0003-3913-6204</orcidid><orcidid>https://orcid.org/0000-0003-4177-761X</orcidid><oa>free_for_read</oa></addata></record> |
fulltext | fulltext |
identifier | ISSN: 2045-2322 |
ispartof | Scientific reports, 2024-12, Vol.14 (1), p.30228-13, Article 30228 |
issn | 2045-2322 2045-2322 |
language | eng |
recordid | cdi_doaj_primary_oai_doaj_org_article_55eb425a586d4826a2a094dcd2c65c3d |
source | Publicly Available Content Database; PubMed Central; Free Full-Text Journals in Chemistry; Springer Nature - nature.com Journals - Fully Open Access |
subjects | 631/57 631/61/2049 639/166/988 639/624/1020/1095 Biomimetics Contact angle Control algorithms Droplet bouncing Femtosecond-pulsed laser Humanities and Social Sciences Hydrophobicity multidisciplinary Periodic structure Pressured-taper angle model Repellency Science Science (multidisciplinary) Taper angle |
title | Hydrophobicity of periodic structure with taper angle under pressure impact |
url | http://sfxeu10.hosted.exlibrisgroup.com/loughborough?ctx_ver=Z39.88-2004&ctx_enc=info:ofi/enc:UTF-8&ctx_tim=2025-01-27T00%3A45%3A43IST&url_ver=Z39.88-2004&url_ctx_fmt=infofi/fmt:kev:mtx:ctx&rfr_id=info:sid/primo.exlibrisgroup.com:primo3-Article-proquest_doaj_&rft_val_fmt=info:ofi/fmt:kev:mtx:journal&rft.genre=article&rft.atitle=Hydrophobicity%20of%20periodic%20structure%20with%20taper%20angle%20under%20pressure%20impact&rft.jtitle=Scientific%20reports&rft.au=Goto,%20Ren&rft.date=2024-12-04&rft.volume=14&rft.issue=1&rft.spage=30228&rft.epage=13&rft.pages=30228-13&rft.artnum=30228&rft.issn=2045-2322&rft.eissn=2045-2322&rft_id=info:doi/10.1038/s41598-024-81778-0&rft_dat=%3Cproquest_doaj_%3E3146519160%3C/proquest_doaj_%3E%3Cgrp_id%3Ecdi_FETCH-LOGICAL-c422t-afec5c636931891efc08a97ebe2c18a362835fe57c22988a3b797f6ee994f34f3%3C/grp_id%3E%3Coa%3E%3C/oa%3E%3Curl%3E%3C/url%3E&rft_id=info:oai/&rft_pqid=3140814275&rft_id=info:pmid/39632960&rfr_iscdi=true |