Lubricant evolution and depletion under laser heating : a molecular dynamics study

Understanding the performance of polymeric perfluoro-lubricants under femtosecond laser irradiation is of great fundamental importance in enhancing the stability and durability of micro- and nano-devices. In this paper, molecular dynamics simulations of perfluoropolyether are carried out to investig...

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Main Authors: Li, Yong, Wong, Chee How, Li, Bei, Yu, Shengkai, Hua, Wei, Zhou, Weidong
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2013
Online Access:https://hdl.handle.net/10356/96625
http://hdl.handle.net/10220/10350
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-966252020-03-07T13:22:17Z Lubricant evolution and depletion under laser heating : a molecular dynamics study Li, Yong Wong, Chee How Li, Bei Yu, Shengkai Hua, Wei Zhou, Weidong School of Mechanical and Aerospace Engineering Understanding the performance of polymeric perfluoro-lubricants under femtosecond laser irradiation is of great fundamental importance in enhancing the stability and durability of micro- and nano-devices. In this paper, molecular dynamics simulations of perfluoropolyether are carried out to investigate the evolution and depletion of molecularly thin lubricants when subjected to laser heating. Ultrathin perfluoropolyether lubricant films are modeled by the coarse-grained bead-spring model and are coated on an inert substrate. Periodical surface morphology and layered film structure are formed in the equilibrium lubricant system due to the polar interaction of functional beads. It is found that the lubricant undergoes severe depletion with an increase in laser heating duration, resulting in aggravated lubricant evaporation and raised ridges. A temperature gradient is formed in the radial direction due to the heat transfer between the heated beads and the surrounding lubricants. During the cooling process, the strong functional interaction between end-beads and the substrate layer hinders the recovery and redistribution of depleted lubricant beads, resulting in an undersaturated film. The mechanism of lubricant depletion under laser heating is further demonstrated by analyzing the temperature dependence of surface tension. The detailed analyses of lubricant depletion provided in the present work are expected to be guidelines to design novel perfluoropolyether lubricants. 2013-06-13T07:06:51Z 2019-12-06T19:33:08Z 2013-06-13T07:06:51Z 2019-12-06T19:33:08Z 2012 2012 Journal Article Li, Y., Wong, C. H., Li, B., Yu, S., Hua, W., & Zhou, W. (2012). Lubricant evolution and depletion under laser heating: a molecular dynamics study. Soft Matter, 8(20), 5649-5657. 1744-683X https://hdl.handle.net/10356/96625 http://hdl.handle.net/10220/10350 10.1039/c2sm07326a en Soft matter © 2012 The Royal Society of Chemistry.
institution Nanyang Technological University
building NTU Library
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description Understanding the performance of polymeric perfluoro-lubricants under femtosecond laser irradiation is of great fundamental importance in enhancing the stability and durability of micro- and nano-devices. In this paper, molecular dynamics simulations of perfluoropolyether are carried out to investigate the evolution and depletion of molecularly thin lubricants when subjected to laser heating. Ultrathin perfluoropolyether lubricant films are modeled by the coarse-grained bead-spring model and are coated on an inert substrate. Periodical surface morphology and layered film structure are formed in the equilibrium lubricant system due to the polar interaction of functional beads. It is found that the lubricant undergoes severe depletion with an increase in laser heating duration, resulting in aggravated lubricant evaporation and raised ridges. A temperature gradient is formed in the radial direction due to the heat transfer between the heated beads and the surrounding lubricants. During the cooling process, the strong functional interaction between end-beads and the substrate layer hinders the recovery and redistribution of depleted lubricant beads, resulting in an undersaturated film. The mechanism of lubricant depletion under laser heating is further demonstrated by analyzing the temperature dependence of surface tension. The detailed analyses of lubricant depletion provided in the present work are expected to be guidelines to design novel perfluoropolyether lubricants.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Li, Yong
Wong, Chee How
Li, Bei
Yu, Shengkai
Hua, Wei
Zhou, Weidong
format Article
author Li, Yong
Wong, Chee How
Li, Bei
Yu, Shengkai
Hua, Wei
Zhou, Weidong
spellingShingle Li, Yong
Wong, Chee How
Li, Bei
Yu, Shengkai
Hua, Wei
Zhou, Weidong
Lubricant evolution and depletion under laser heating : a molecular dynamics study
author_sort Li, Yong
title Lubricant evolution and depletion under laser heating : a molecular dynamics study
title_short Lubricant evolution and depletion under laser heating : a molecular dynamics study
title_full Lubricant evolution and depletion under laser heating : a molecular dynamics study
title_fullStr Lubricant evolution and depletion under laser heating : a molecular dynamics study
title_full_unstemmed Lubricant evolution and depletion under laser heating : a molecular dynamics study
title_sort lubricant evolution and depletion under laser heating : a molecular dynamics study
publishDate 2013
url https://hdl.handle.net/10356/96625
http://hdl.handle.net/10220/10350
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