2018
A Coating that Combines Lotus‐Effect and Contact‐Active Antimicrobial Properties on Silicone
Abstract: The antimicrobial equipment of materials is of great importance in medicine but also in daily life. A challenge is the antimicrobial modification of hydrophobic surfaces without increasing their low surface energy. This is particularly important for silicone‐based materials. Because most antimicrobial surface modifications render the materials more hydrophilic, methods are needed to achieve antimicrobial activity without changing the high water‐contact‐angle. This is achieved in the present work, where SiO2 na…
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Cited by 89 publications
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“…Obviously, there is an optimal HHR value, which underlines the importance of the hydrophilic/hydrophobic balance (HHB) for the antimicrobial effect. Such effects have also been reported for membrane-active antimicrobial polymers in solution , and on surfaces. − …”
Section: Resultsmentioning
confidence: 58%
“…Obviously, there is an optimal HHR value, which underlines the importance of the hydrophilic/hydrophobic balance (HHB) for the antimicrobial effect. Such effects have also been reported for membrane-active antimicrobial polymers in solution , and on surfaces. − …”
Section: Resultsmentioning
confidence: 58%
“…However, after coating Cu nanoparticles on cellulose fibers, these resultant fibers exhibited superhydrophobicity with a contact angle of 154.7° (Figure a). This was attributed to the micro/nano protrusions resulting from copper nanoparticles, which was similar to the lotus leaf effect . When fixing these fibers on sloping glass, the water drops on the conductive fibers slipped off quickly, while the RCF was soaked from the water drop (Figures b and S10a).…”
Section: Resultsmentioning
confidence: 76%
“…Furthermore, the Cu electronic textile exhibits inherent hydrophobicity. The water contact angle on the surface of the Cu electronic textile even reaches up to 149.05°without any fluorinated treatment (Figure 3b), 40 and water droplets can easily roll off from the surface of the Cu electronic textile surface without any adhesion (Figure 3c). More importantly, the copper electronic textile demonstrated excellent moisture permeability.…”
Section: ■ Results and Discussionmentioning
confidence: 99%
