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Article

Study of Modified Area of Polymer Samples Exposed to a He Atmospheric Pressure Plasma Jet Using Different Treatment Conditions

by
Thalita M. C. Nishime
1,2,*,
Robert Wagner
1 and
Konstantin G. Kostov
2
1
Leibniz Institute for Plasma Science and Technology (INP), D-17489 Greifswald (MV), Germany
2
Faculty of Engineering (FEG)—São Paulo State University (UNESP), Guaratinguetá (SP) 12516-410, Brazil
*
Author to whom correspondence should be addressed.
Polymers 2020, 12(5), 1028; https://doi.org/10.3390/polym12051028
Submission received: 3 April 2020 / Revised: 21 April 2020 / Accepted: 23 April 2020 / Published: 1 May 2020
(This article belongs to the Special Issue Polymer Processing and Surfaces)

Abstract

In the last decade atmospheric pressure plasma jets (APPJs) have been routinely employed for surface processing of polymers due to their capability of generating very reactive chemistry at near-ambient temperature conditions. Usually, the plasma jet modification effect spans over a limited area (typically a few cm²), therefore, for industrial applications, where treatment of large and irregular surfaces is needed, jet and/or sample manipulations are required. More specifically, for treating hollow objects, like pipes and containers, the plasma jet must be introduced inside of them. In this case, a normal jet incidence to treated surface is difficult if not impossible to maintain. In this paper, a plasma jet produced at the end of a long flexible plastic tube was used to treat polyethylene terephthalate (PET) samples with different incidence angles and using different process parameters. Decreasing the angle formed between the plasma plume and the substrate leads to increase in the modified area as detected by surface wettability analysis. The same trend was confirmed by the distribution of reactive oxygen species (ROS), expanding on starch-iodine-agar plates, where a greater area was covered when the APPJ was tilted. Additionally, UV-VUV irradiation profiles obtained from the plasma jet spreading on the surface confirms such behavior.
Keywords: PET; polymer; plasma jet; tilted application; ROS distribution; UV; VUV PET; polymer; plasma jet; tilted application; ROS distribution; UV; VUV

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MDPI and ACS Style

C. Nishime, T.M.; Wagner, R.; G. Kostov, K. Study of Modified Area of Polymer Samples Exposed to a He Atmospheric Pressure Plasma Jet Using Different Treatment Conditions. Polymers 2020, 12, 1028. https://doi.org/10.3390/polym12051028

AMA Style

C. Nishime TM, Wagner R, G. Kostov K. Study of Modified Area of Polymer Samples Exposed to a He Atmospheric Pressure Plasma Jet Using Different Treatment Conditions. Polymers. 2020; 12(5):1028. https://doi.org/10.3390/polym12051028

Chicago/Turabian Style

C. Nishime, Thalita M., Robert Wagner, and Konstantin G. Kostov. 2020. "Study of Modified Area of Polymer Samples Exposed to a He Atmospheric Pressure Plasma Jet Using Different Treatment Conditions" Polymers 12, no. 5: 1028. https://doi.org/10.3390/polym12051028

APA Style

C. Nishime, T. M., Wagner, R., & G. Kostov, K. (2020). Study of Modified Area of Polymer Samples Exposed to a He Atmospheric Pressure Plasma Jet Using Different Treatment Conditions. Polymers, 12(5), 1028. https://doi.org/10.3390/polym12051028

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