Surface Chemistry Enhancements for the Tunable Super-Liquid Repellency of Low-Surface-Tension Liquids
| dc.contributor.author | Wong, William | |
| dc.date.accessioned | 2020-02-06T00:59:21Z | |
| dc.date.available | 2020-02-06T00:59:21Z | |
| dc.date.issued | 2019 | |
| dc.date.updated | 2019-11-25T07:28:44Z | |
| dc.description.abstract | Super-hydrophobic, super-oleo(amphi)phobic, and super-omniphobic materials are universally important in the fields of science and engineering. Despite rapid advancements, gaps of understanding still exist between each distinctive wetting state. The transition of super-hydrophobicity to super-(oleo-, amphi-, and omni-)phobicity typically requires the use of re-entrant features. Today, re-entrant geometry induced super-(amphi- and omni-)phobicity is well-supported by both experiments and theory. However, owing to geometrical complexities, the concept of re-entrant geometry forms a dogma that limits the industrial progress of these unique states of wettability. Moreover, a key fundamental question remains unanswered: are extreme surface chemistry enhancements able to influence super-liquid repellency? Here, this was rigorously tested via an alternative pathway that does not require explicit designer re-entrant features. Highly controllable and tunable vertical network polymerization and functionalization were used to achieve fluoroalkyl densification on nanoparticles. For the first time, relative fluoro-functionalization densities are quantitatively tuned and correlated to super-liquid repellency performance. Step-wise tunable super-amphiphobic nanoparticle films with a Cassie–Baxter state (contact angle of >150° and sliding angle of <10°) against various liquids is demonstrated. This was tested down to very low surface tension liquids to a minimum of ca. 23.8 mN/m. Such findings could eventually lead to the future development of super-(amphi)omniphobic materials that transcend the sole use of re-entrant geometry. | |
| dc.format.mimetype | application/pdf | en_AU |
| dc.identifier.issn | 1530-6984 | en_AU |
| dc.identifier.uri | http://hdl.handle.net/1885/201363 | |
| dc.language.iso | en_AU | en_AU |
| dc.provenance | This is an open access article published under a Creative Commons Attribution (CC-BY) License, which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited. | en_AU |
| dc.publisher | American Chemical Society | en_AU |
| dc.rights | © 2019 American Chemical Society | en_AU |
| dc.rights.license | Creative Commons Attribution (CC-BY) License | en_AU |
| dc.rights.uri | http://creativecommons.org/licenses/by/4.0/ | en_AU |
| dc.source | Nano Letters | en_AU |
| dc.title | Surface Chemistry Enhancements for the Tunable Super-Liquid Repellency of Low-Surface-Tension Liquids | en_AU |
| dc.type | Journal article | en_AU |
| dcterms.accessRights | Open Access | en_AU |
| local.bibliographicCitation.issue | 3 | en_AU |
| local.bibliographicCitation.lastpage | 1901 | en_AU |
| local.bibliographicCitation.startpage | 1892 | en_AU |
| local.contributor.affiliation | Wong, William, College of Engineering and Computer Science, ANU | en_AU |
| local.contributor.authoruid | Wong, William, u5466507 | en_AU |
| local.description.notes | Imported from ARIES | |
| local.identifier.absfor | 091205 - Functional Materials | en_AU |
| local.identifier.absseo | 860699 - Industrial Chemicals and Related Products not elsewhere classified | en_AU |
| local.identifier.ariespublication | u3102795xPUB1017 | en_AU |
| local.identifier.citationvolume | 19 | en_AU |
| local.identifier.doi | 10.1021/acs.nanolett.8b04972 | en_AU |
| local.identifier.scopusID | 2-s2.0-85061910999 | |
| local.publisher.url | https://pubs.acs.org/ | en_AU |
| local.type.status | Published Version | en_AU |
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