Modeling and Experimental Study of Hysteresis during the Reactive Sputter Deposition of Titanium Oxides and Nitrides Using a Pulsed DC Magnetron; Materials Science Forum; Vol. 1065

Bibliografiske detaljer
Parent link:Materials Science Forum.— .— Bäch: Trans Tech Publications Ltd.
Vol. 1065.— 2022.— P. 215-229
Andre forfattere: Evdokimov K. E. Kirill Evgenievich, Konishchev M. E. Maksim Evgenievich, Zhi Lei Sun, Avdeeva D. K. Diana Konstantinovna, Tverdokhlebov S. I. Sergei Ivanovich
Summary:Title screen
There is an ongoing interest in the research and application of thin film coatings containing titanium oxides and titanium nitrides, due to their properties such as photocatalytic activity, mechanical hardness, biocompatibility, and so on. Reactive sputter deposition is widely used for the production of such coatings. A characteristic of this method is the hysteresis, which leads to an ambiguous dependence of the deposition rate and the coating quality on the process conditions. There are a number of theoretical models describing reactive magnetron sputtering. One of the most advanced is the RSD2013 model. Several parameters in this model can only be determined experimentally. This article focuses on the investigation of the hysteresis during the reactive magnetron sputtering deposition process. The RSD2013 parameters that describe the experimental setup were determined, and on their basis the dependences of the characteristics of the hysteresis region on the discharge power, the type of reactive gas, and the working gas pressure were investigated. Additionally, the growth rate of the thin film coating prepared in various modes was compared with the RSD2013 model, which is in agreement with the experimental data. The results obtained from the RSD2013 model in comparison to the experimentally obtained data make it possible to provide an overview of suitable operating modes for the deposition of titanium dioxide and titanium dioxide for the magnetron sputtering device used
Текстовый файл
AM_Agreement
Sprog:engelsk
Udgivet: 2022
Fag:
Online adgang:https://doi.org/10.4028/p-nu5t9z
Format: Electronisk Book Chapter
KOHA link:https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=683661

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330 |a There is an ongoing interest in the research and application of thin film coatings containing titanium oxides and titanium nitrides, due to their properties such as photocatalytic activity, mechanical hardness, biocompatibility, and so on. Reactive sputter deposition is widely used for the production of such coatings. A characteristic of this method is the hysteresis, which leads to an ambiguous dependence of the deposition rate and the coating quality on the process conditions. There are a number of theoretical models describing reactive magnetron sputtering. One of the most advanced is the RSD2013 model. Several parameters in this model can only be determined experimentally. This article focuses on the investigation of the hysteresis during the reactive magnetron sputtering deposition process. The RSD2013 parameters that describe the experimental setup were determined, and on their basis the dependences of the characteristics of the hysteresis region on the discharge power, the type of reactive gas, and the working gas pressure were investigated. Additionally, the growth rate of the thin film coating prepared in various modes was compared with the RSD2013 model, which is in agreement with the experimental data. The results obtained from the RSD2013 model in comparison to the experimentally obtained data make it possible to provide an overview of suitable operating modes for the deposition of titanium dioxide and titanium dioxide for the magnetron sputtering device used 
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461 1 |9 657562  |t Materials Science Forum  |c Bäch  |n Trans Tech Publications Ltd. 
463 1 |t Vol. 1065  |v P. 215-229  |d 2022 
610 1 |a Hysteresis 
610 1 |a Magnetron Sputtering 
610 1 |a Modelling 
610 1 |a Reactive Sputter Deposition 
610 1 |a Titanium Nitrides 
610 1 |a Titanium Oxides 
610 1 |a электронный ресурс 
610 1 |a труды учёных ТПУ 
701 1 |a Evdokimov  |b K. E.  |c physicist  |c Associate Professor of Tomsk Polytechnic University, Candidate of physical and mathematical sciences  |f 1976-  |g Kirill Evgenievich  |9 15902 
701 1 |a Konishchev  |b M. E.  |c physicist  |c Senior Lecturer of Tomsk Polytechnic University  |f 1987-  |g Maksim Evgenievich  |9 17743 
701 0 |a Zhi Lei Sun 
701 1 |a Avdeeva  |b D. K.  |c specialist in the field of non-destructive testing  |c Professor of Tomsk Polytechnic University, Doctor of technical sciences  |f 1943-  |g Diana Konstantinovna  |9 16896 
701 1 |a Tverdokhlebov  |b S. I.  |c physicist  |c Associate Professor of Tomsk Polytechnic University, Candidate of physical and mathematical science  |f 1961-  |g Sergei Ivanovich  |9 15101 
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