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Cited 11 time in webofscience Cited 12 time in scopus
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Superhydrophilic nanopillar-structured quartz surfaces for the prevention of biofilm formation in optical devices

Authors
Han, SooJi, SeungmukAbdullah, AbdullahKim, DuckilLim, HyuneuiLee, Donghyun
Issue Date
Jan-2018
Publisher
ELSEVIER SCIENCE BV
Keywords
Superhydrophilic; Nanopillar; Bactericidal; Transparent; Optical devices
Citation
APPLIED SURFACE SCIENCE, v.429, pp 244 - 252
Pages
9
Journal Title
APPLIED SURFACE SCIENCE
Volume
429
Start Page
244
End Page
252
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/1290
DOI
10.1016/j.apsusc.2017.07.164
ISSN
0169-4332
1873-5584
Abstract
Bacterial biofilm formation on optical devices such as contact lenses, optical glasses, endoscopic devices, and microscopic slides and lenses are major concerns in the field of medicine and biomedical engineering. To solve these problems, here we present the first report of superhydrophilic transparent nanopillar-structured surfaces with bactericidal properties. To construct bactericidal surfaces, we imitated a topological mechanism found in nature in which nanopillar-structured surfaces cause a mechanical disruption of the outer cell membranes of bacteria, resulting in bacterial cell death. We used nanosphere lithography to fabricate nanopillars with various sharpnesses and heights on a quartz substrate. Water contact angle and light reflectance measurements revealed superhydrophilic, antifogging and antireflective properties, which are important for use in optical devices. To determine bactericidal efficiency, the fabricated surfaces were incubated and tested against two Gram-negative bacteria associated with biofilm formation and various diseases in humans, Pseudomonas aeruginosa and Escherichia coli. The highest bactericidal activity was achieved with nanopillars that measured 300 nm in height and 10 nm in apex diameter. Quartz substrates patterned with such nanopillars killed similar to 38,000P. aeruginosa and similar to 27,000 E. coli cells cm(-2) min(-1), respectively. Thus, the newly designed nanopillar-structured bactericidal surfaces are suitable for use in the development of superhydrophilic and transparent optical devices. (C) 2017 Elsevier B.V. All rights reserved.
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