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Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses

Femtosecond laser-induced surface structuring is a promising technique for the large-scale formation of nano- and microscale structures that can effectively modify materials’ optical, electrical, mechanical, and tribological properties. Here we perform a systematic study on femtosecond laser-induced...

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Autores principales: Jalil, Sohail A., Akram, Mahreen, Bhat, Javeed A., Hayes, Jeffrey J., Singh, Subhash C., ElKabbash, Mohamed, Guo, Chunlei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: New York], North-Holland 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7043332/
https://www.ncbi.nlm.nih.gov/pubmed/32184533
http://dx.doi.org/10.1016/j.apsusc.2019.144952
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author Jalil, Sohail A.
Akram, Mahreen
Bhat, Javeed A.
Hayes, Jeffrey J.
Singh, Subhash C.
ElKabbash, Mohamed
Guo, Chunlei
author_facet Jalil, Sohail A.
Akram, Mahreen
Bhat, Javeed A.
Hayes, Jeffrey J.
Singh, Subhash C.
ElKabbash, Mohamed
Guo, Chunlei
author_sort Jalil, Sohail A.
collection PubMed
description Femtosecond laser-induced surface structuring is a promising technique for the large-scale formation of nano- and microscale structures that can effectively modify materials’ optical, electrical, mechanical, and tribological properties. Here we perform a systematic study on femtosecond laser-induced surface structuring on gold (Au) surface and their effect on both hydrophobicity and bacterial-adhesion properties. We created various structures including subwavelength femtosecond laser-induced periodic surface structures (fs-LIPSSs), fs-LIPSSs covered with nano/microstructures, conic and 1D-rod-like structures ([Formula: see text] 6 μm), and spherical nanostructures with a diameter [Formula: see text] 10 nm, by raster scanning the laser beam, at different laser fluences. We show that femtosecond laser processing turns originally hydrophilic Au to a superhydrophobic surface. We determine the optimal conditions for the creation of the different surface structures and explain the mechanism behind the formed structures and show that the laser fluence is the main controlling parameter. We demonstrate the ability of all the formed surface structures to reduce the adhesion of Escherichia coli (E. coli) bacteria and show that fs-LIPSSs enjoys superior antibacterial adhesion properties due to its large-scale surface coverage. Approximately 99.03% of the fs-LIPSSs surface is free from bacterial adhesion. The demonstrated physical inhibition of bacterial colonies and biofilm formation without antibiotics is a crucial step towards reducing antimicrobial-resistant infections.
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spelling pubmed-70433322020-03-15 Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses Jalil, Sohail A. Akram, Mahreen Bhat, Javeed A. Hayes, Jeffrey J. Singh, Subhash C. ElKabbash, Mohamed Guo, Chunlei Appl Surf Sci Article Femtosecond laser-induced surface structuring is a promising technique for the large-scale formation of nano- and microscale structures that can effectively modify materials’ optical, electrical, mechanical, and tribological properties. Here we perform a systematic study on femtosecond laser-induced surface structuring on gold (Au) surface and their effect on both hydrophobicity and bacterial-adhesion properties. We created various structures including subwavelength femtosecond laser-induced periodic surface structures (fs-LIPSSs), fs-LIPSSs covered with nano/microstructures, conic and 1D-rod-like structures ([Formula: see text] 6 μm), and spherical nanostructures with a diameter [Formula: see text] 10 nm, by raster scanning the laser beam, at different laser fluences. We show that femtosecond laser processing turns originally hydrophilic Au to a superhydrophobic surface. We determine the optimal conditions for the creation of the different surface structures and explain the mechanism behind the formed structures and show that the laser fluence is the main controlling parameter. We demonstrate the ability of all the formed surface structures to reduce the adhesion of Escherichia coli (E. coli) bacteria and show that fs-LIPSSs enjoys superior antibacterial adhesion properties due to its large-scale surface coverage. Approximately 99.03% of the fs-LIPSSs surface is free from bacterial adhesion. The demonstrated physical inhibition of bacterial colonies and biofilm formation without antibiotics is a crucial step towards reducing antimicrobial-resistant infections. New York], North-Holland 2020-03-15 /pmc/articles/PMC7043332/ /pubmed/32184533 http://dx.doi.org/10.1016/j.apsusc.2019.144952 Text en © 2019 The Authors http://creativecommons.org/licenses/by/4.0/ This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Jalil, Sohail A.
Akram, Mahreen
Bhat, Javeed A.
Hayes, Jeffrey J.
Singh, Subhash C.
ElKabbash, Mohamed
Guo, Chunlei
Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
title Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
title_full Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
title_fullStr Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
title_full_unstemmed Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
title_short Creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
title_sort creating superhydrophobic and antibacterial surfaces on gold by femtosecond laser pulses
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7043332/
https://www.ncbi.nlm.nih.gov/pubmed/32184533
http://dx.doi.org/10.1016/j.apsusc.2019.144952
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