TY - JOUR
T1 - Intrinsic Hydrophobic Cairnlike Multilayer Films for Antibacterial Effect with Enhanced Durability
AU - Jeong, Hyejoong
AU - Heo, Jiwoong
AU - Son, Boram
AU - Choi, Daheui
AU - Park, Tai Hyun
AU - Chang, Minwook
AU - Hong, Jinkee
N1 - Publisher Copyright:
© 2015 American Chemical Society.
PY - 2015/12/2
Y1 - 2015/12/2
N2 - One important aspect of nanotechnology includes thin films capable of being applied to a wide variety of surfaces. Indispensable functions of films include controlled surface energy, stability, and biocompatibility in physiological systems. In this study, we explored the ancient Asian coating material "lacquer" to enhance the physiological and mechanical stability of nanofilms. Lacquer is extracted from the lacquer tree and its main component called urushiol, which is a small molecule that can produce an extremely strong coating. Taking full advantage of layer-by-layer assembly techniques, we successfully fabricated urushiol-based thin films composed of small molecule/polymer multilayers by controlling their molecular interaction. Unique cairnlike nanostructures in this film, produced by urushiol particles, have advantages of intrinsic hydrophobicity and durability against mechanical stimuli at physiological environment. We demonstrated the stability tests as well as the antimicrobial effects of this film.
AB - One important aspect of nanotechnology includes thin films capable of being applied to a wide variety of surfaces. Indispensable functions of films include controlled surface energy, stability, and biocompatibility in physiological systems. In this study, we explored the ancient Asian coating material "lacquer" to enhance the physiological and mechanical stability of nanofilms. Lacquer is extracted from the lacquer tree and its main component called urushiol, which is a small molecule that can produce an extremely strong coating. Taking full advantage of layer-by-layer assembly techniques, we successfully fabricated urushiol-based thin films composed of small molecule/polymer multilayers by controlling their molecular interaction. Unique cairnlike nanostructures in this film, produced by urushiol particles, have advantages of intrinsic hydrophobicity and durability against mechanical stimuli at physiological environment. We demonstrated the stability tests as well as the antimicrobial effects of this film.
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U2 - 10.1021/acsami.5b07613
DO - 10.1021/acsami.5b07613
M3 - Article
C2 - 26561514
AN - SCOPUS:84948845785
SN - 1944-8244
VL - 7
SP - 26117
EP - 26123
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 47
ER -