Effect of substrate temperature on surface morphology and mechanical properties of Ti films

BackgroundTitanium and its alloys are widely utilized within the military, aerospace, shipping, nuclear energy, and biomedical fields because of the advantages of low density, high strength, good corrosion resistance, and high biocompatibility. Moreover, titanium films are important materials for su...

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Main Authors: WANG Xing, MA Mingwang, WAN Ruiyun, WANG Lei, TAN Xiaohua
Format: Article
Language:zho
Published: Science Press 2023-10-01
Series:He jishu
Subjects:
Online Access:http://www.hjs.sinap.ac.cn/thesisDetails#10.11889/j.0253-3219.2023.hjs.46.100202&lang=zh
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author WANG Xing
MA Mingwang
WAN Ruiyun
WANG Lei
TAN Xiaohua
author_facet WANG Xing
MA Mingwang
WAN Ruiyun
WANG Lei
TAN Xiaohua
author_sort WANG Xing
collection DOAJ
description BackgroundTitanium and its alloys are widely utilized within the military, aerospace, shipping, nuclear energy, and biomedical fields because of the advantages of low density, high strength, good corrosion resistance, and high biocompatibility. Moreover, titanium films are important materials for surface protection due to their high hardness and good compactness. During the preparation of titanium films, the surface morphology and phase structure will be influenced by substrate properties (e.g., surface morphology and temperature), working gas pressure, and other factors. Substrate temperature mainly influences the growth process of thin films, which directly affects the grain structure of the films, and thus changes the corresponding mechanical properties.PurposeThis study aims to establish the relationship between substrate temperature and mechanical properties of titanium films.MethodsFirstly, titanium film samples were prepared at a substrate temperature range of 600~750 ℃ by using resistance evaporation coating on the surface of molybdenum substrate. Then, the structural characterization of the film was examined using X-ray diffraction (XRD) so as to obtain the preferred orientation of titanium film. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) were employed to identify the surface morphologies of the titanium films, including grain size distribution and surface roughness. Finally, an AFM nano-indentation method was performed to examine the mechanical properties of the titanium films and obtain the elastic modulus of titanium film.ResultsThe results demonstrate that the substrate temperature significantly influences the microstructure and mechanical properties of titanium films. When the substrate temperature increases from 600 ℃ to 750 ℃, the preferred orientation of titanium films changes from (101) to (002) due to the competition between the minimization of strain energy and surface energy. With the increase of substrate temperature, the mobility of titanium atoms on the substrate increases, resulting in increased average grain size, surface roughness, and elastic modulus of the titanium films. The average grain size increases by 26% as the substrate temperature increased from 600 ℃ to 750 ℃.ConclusionsThe microstructure, surface morphology, and mechanical properties of titanium films are sensitive to substrate temperature. A high substrate temperature in the process of resistance evaporation is more desirable to obtain titanium films with high mechanical properties.
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spelling doaj.art-2427e787583c45bbb0fd8ec32a473e3f2023-12-04T07:35:28ZzhoScience PressHe jishu0253-32192023-10-01461010020210020210.11889/j.0253-3219.2023.hjs.46.1002020253-3219(2023)10-0008-07Effect of substrate temperature on surface morphology and mechanical properties of Ti filmsWANG XingMA MingwangWAN RuiyunWANG LeiTAN XiaohuaBackgroundTitanium and its alloys are widely utilized within the military, aerospace, shipping, nuclear energy, and biomedical fields because of the advantages of low density, high strength, good corrosion resistance, and high biocompatibility. Moreover, titanium films are important materials for surface protection due to their high hardness and good compactness. During the preparation of titanium films, the surface morphology and phase structure will be influenced by substrate properties (e.g., surface morphology and temperature), working gas pressure, and other factors. Substrate temperature mainly influences the growth process of thin films, which directly affects the grain structure of the films, and thus changes the corresponding mechanical properties.PurposeThis study aims to establish the relationship between substrate temperature and mechanical properties of titanium films.MethodsFirstly, titanium film samples were prepared at a substrate temperature range of 600~750 ℃ by using resistance evaporation coating on the surface of molybdenum substrate. Then, the structural characterization of the film was examined using X-ray diffraction (XRD) so as to obtain the preferred orientation of titanium film. Scanning electron microscopy (SEM) and atomic force microscopy (AFM) were employed to identify the surface morphologies of the titanium films, including grain size distribution and surface roughness. Finally, an AFM nano-indentation method was performed to examine the mechanical properties of the titanium films and obtain the elastic modulus of titanium film.ResultsThe results demonstrate that the substrate temperature significantly influences the microstructure and mechanical properties of titanium films. When the substrate temperature increases from 600 ℃ to 750 ℃, the preferred orientation of titanium films changes from (101) to (002) due to the competition between the minimization of strain energy and surface energy. With the increase of substrate temperature, the mobility of titanium atoms on the substrate increases, resulting in increased average grain size, surface roughness, and elastic modulus of the titanium films. The average grain size increases by 26% as the substrate temperature increased from 600 ℃ to 750 ℃.ConclusionsThe microstructure, surface morphology, and mechanical properties of titanium films are sensitive to substrate temperature. A high substrate temperature in the process of resistance evaporation is more desirable to obtain titanium films with high mechanical properties.http://www.hjs.sinap.ac.cn/thesisDetails#10.11889/j.0253-3219.2023.hjs.46.100202&lang=zhsubstrate temperaturetitaniumpreferred orientationgrain sizenanoindentation
spellingShingle WANG Xing
MA Mingwang
WAN Ruiyun
WANG Lei
TAN Xiaohua
Effect of substrate temperature on surface morphology and mechanical properties of Ti films
He jishu
substrate temperature
titanium
preferred orientation
grain size
nanoindentation
title Effect of substrate temperature on surface morphology and mechanical properties of Ti films
title_full Effect of substrate temperature on surface morphology and mechanical properties of Ti films
title_fullStr Effect of substrate temperature on surface morphology and mechanical properties of Ti films
title_full_unstemmed Effect of substrate temperature on surface morphology and mechanical properties of Ti films
title_short Effect of substrate temperature on surface morphology and mechanical properties of Ti films
title_sort effect of substrate temperature on surface morphology and mechanical properties of ti films
topic substrate temperature
titanium
preferred orientation
grain size
nanoindentation
url http://www.hjs.sinap.ac.cn/thesisDetails#10.11889/j.0253-3219.2023.hjs.46.100202&lang=zh
work_keys_str_mv AT wangxing effectofsubstratetemperatureonsurfacemorphologyandmechanicalpropertiesoftifilms
AT mamingwang effectofsubstratetemperatureonsurfacemorphologyandmechanicalpropertiesoftifilms
AT wanruiyun effectofsubstratetemperatureonsurfacemorphologyandmechanicalpropertiesoftifilms
AT wanglei effectofsubstratetemperatureonsurfacemorphologyandmechanicalpropertiesoftifilms
AT tanxiaohua effectofsubstratetemperatureonsurfacemorphologyandmechanicalpropertiesoftifilms