Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing

Stainless steel micromold is an alternative of silicon (Si) micromold in the fabrication of polymeric microfluidic devices because of the brittleness and short lifetime of Si mold. High adhesion and friction of stainless steel micromold can cause the distortion of the microstructures of polymeric pr...

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Main Authors: Hardt, David E., Chun, Jung H., Saha, Biswajit, Tor, Shu Beng, Liu, Erjia
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2013
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Online Access:https://hdl.handle.net/10356/97621
http://hdl.handle.net/10220/12072
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Institution: Nanyang Technological University
Language: English
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spelling sg-ntu-dr.10356-976212020-03-07T13:19:20Z Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing Hardt, David E. Chun, Jung H. Saha, Biswajit Tor, Shu Beng Liu, Erjia School of Mechanical and Aerospace Engineering Singapore-MIT Alliance Programme DRNTU::Engineering::Mechanical engineering Stainless steel micromold is an alternative of silicon (Si) micromold in the fabrication of polymeric microfluidic devices because of the brittleness and short lifetime of Si mold. High adhesion and friction of stainless steel micromold can cause the distortion of the microstructures of polymeric products. In this work, titanium (Ti), aluminum (Al) and polytetrafluoroethylene (PTFE) were co-sputter deposited on stainless steel micromolds to improve their surface properties. The sputtering power applied to the PTFE target was varied to control the PTFE concentration in the Ti–Al–PTFE coatings, which affected the bonding structure, surface roughness, friction and contact angle of coatings characterized using micro-Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), confocal microscopy, ball-on-disc tribometer and goniometer, respectively. It was observed that the Ti–Al–PTFE coatings were a mixture of carbide, PTFE-like material and amorphous carbon. The surface roughness of coated micromolds decreased with the increase in the PTFE concentration. The Ti–Al–PTFE coating deposited with 50 W sputtering power on the PTFE target showed the lowest friction coefficient and surface energy of about 0.17 and 13.1 × 10−3 N/m, respectively. The coated stainless steel micromolds showed a better replication performance compared to the bare stainless steel micromolds in terms of the quality of polymeric microfluidic devices fabricated using hot embossing process. This work also investigated the coating properties at the sidewalls of the micromold channels and the limitations of the Ti–Al–PTFE coatings for application in hot-embossing. 2013-07-23T07:52:00Z 2019-12-06T19:44:41Z 2013-07-23T07:52:00Z 2019-12-06T19:44:41Z 2012 2012 Journal Article Saha, B., Tor, S. B., Liu, E., Hardt, D. E., & Chun, J. H. (2012). Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition: Replication performance and limitation in hot-embossing. Sensors and Actuators B: Chemical, 163(1), 290-298. 0925-4005 https://hdl.handle.net/10356/97621 http://hdl.handle.net/10220/12072 10.1016/j.snb.2011.12.096 en Sensors and actuators B: chemical © 2012 Elsevier B.V.
institution Nanyang Technological University
building NTU Library
country Singapore
collection DR-NTU
language English
topic DRNTU::Engineering::Mechanical engineering
spellingShingle DRNTU::Engineering::Mechanical engineering
Hardt, David E.
Chun, Jung H.
Saha, Biswajit
Tor, Shu Beng
Liu, Erjia
Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
description Stainless steel micromold is an alternative of silicon (Si) micromold in the fabrication of polymeric microfluidic devices because of the brittleness and short lifetime of Si mold. High adhesion and friction of stainless steel micromold can cause the distortion of the microstructures of polymeric products. In this work, titanium (Ti), aluminum (Al) and polytetrafluoroethylene (PTFE) were co-sputter deposited on stainless steel micromolds to improve their surface properties. The sputtering power applied to the PTFE target was varied to control the PTFE concentration in the Ti–Al–PTFE coatings, which affected the bonding structure, surface roughness, friction and contact angle of coatings characterized using micro-Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), confocal microscopy, ball-on-disc tribometer and goniometer, respectively. It was observed that the Ti–Al–PTFE coatings were a mixture of carbide, PTFE-like material and amorphous carbon. The surface roughness of coated micromolds decreased with the increase in the PTFE concentration. The Ti–Al–PTFE coating deposited with 50 W sputtering power on the PTFE target showed the lowest friction coefficient and surface energy of about 0.17 and 13.1 × 10−3 N/m, respectively. The coated stainless steel micromolds showed a better replication performance compared to the bare stainless steel micromolds in terms of the quality of polymeric microfluidic devices fabricated using hot embossing process. This work also investigated the coating properties at the sidewalls of the micromold channels and the limitations of the Ti–Al–PTFE coatings for application in hot-embossing.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Hardt, David E.
Chun, Jung H.
Saha, Biswajit
Tor, Shu Beng
Liu, Erjia
format Article
author Hardt, David E.
Chun, Jung H.
Saha, Biswajit
Tor, Shu Beng
Liu, Erjia
author_sort Hardt, David E.
title Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
title_short Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
title_full Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
title_fullStr Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
title_full_unstemmed Titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
title_sort titanium–aluminum–polytetrafluoroethylene coated stainless steel micromold via co-sputtering deposition : replication performance and limitation in hot-embossing
publishDate 2013
url https://hdl.handle.net/10356/97621
http://hdl.handle.net/10220/12072
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