In the present research, diamond-like carbon (DLC) thin films were applied on steel substrates by means of pulsed-direct current (DC) plasma-enhanced chemical vapor deposition (PE-CVD). The effects of bias voltage and deposition pressure on the films’ structure and properties were investigated. The Raman spectra of the films revealed features typical of G and D bands, indicating the formation of a DLC phase. The results demonstrate that the sp3 carbon fraction or the so-called diamond-like character of the DLC films increased with increasing bias voltage. Moreover, an increase in the bias voltage resulted in a decrease in the film thickness from 800 to 200 nm. Also, the DLC films prepared at a higher deposition pressure showed a higher fraction of sp2-bonded carbon – that is, graphitic domains. Furthermore, it was found that the variation in the bias voltage and deposition pressure also affected the internal stress values of the DLC films in a way that they increased from 1 to 11 GPa when the bias voltage was increased from 475 to 675 V. The effectiveness of DLC films formed on the steel substrates can pave the way for developing a new class of advanced materials to enhance the performance of stainless steel for biomedical applications.
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1 July 2018
Research Article|
March 21 2018
Diamond-like carbon thin films prepared by pulsed-DC PE-CVD for biomedical applications
Mohammad Reza Derakhshandeh, MSc;
Mohammad Reza Derakhshandeh, MSc
Nanotechnology and Advanced Materials Department, Materials and Energy Research Center, Tehran, Iran
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Mohammad Javad Eshraghi, PhD;
Mohammad Javad Eshraghi, PhD
Nanotechnology and Advanced Materials Department, Materials and Energy Research Center, Tehran, Iran
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Mohammad Mahdi Hadavi, PhD;
Mohammad Mahdi Hadavi, PhD
Nanotechnology and Advanced Materials Department, Materials and Energy Research Center, Tehran, Iran
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Masoumeh Javaheri, PhD;
Masoumeh Javaheri, PhD
Nanotechnology and Advanced Materials Department, Materials and Energy Research Center, Tehran, Iran
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Sarah Khamseh, PhD;
Sarah Khamseh, PhD
Department of Nanomaterials and Nanocoatings, Institute for Color Science and Technology, Tehran, Iran
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Morteza Ganjaee Sari, PhD;
Morteza Ganjaee Sari, PhD
Department of Nanomaterials and Nanocoatings, Institute for Color Science and Technology, Tehran, Iran
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Payam Zarrintaj, PhD;
Payam Zarrintaj, PhD
School of Chemical Engineering, College of Engineering, University of Tehran, Tehran, Iran
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Mohammad Reza Saeb, PhD;
Mohammad Reza Saeb, PhD
Department of Resins and Additives, Institute for Color Science and Technology, Tehran, Iran
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Masoud Mozafari, PhD
Nanotechnology and Advanced Materials Department, Materials and Energy Research Center, Tehran, Iran
(corresponding author: mozafari.masoud@gmail.com)
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(corresponding author: mozafari.masoud@gmail.com)
Publisher: Emerald Publishing
Received:
December 17 2017
Accepted:
February 21 2018
Online ISSN: 2050-6260
Print ISSN: 2050-6252
ICE Publishing: All rights reserved
2018
Surface Innovations (2018) 6 (3): 167–175.
Article history
Received:
December 17 2017
Accepted:
February 21 2018
Citation
Derakhshandeh MR, Eshraghi MJ, Hadavi MM, Javaheri M, Khamseh S, Sari MG, Zarrintaj P, Saeb MR, Mozafari M (2018), "Diamond-like carbon thin films prepared by pulsed-DC PE-CVD for biomedical applications". Surface Innovations, Vol. 6 No. 3 pp. 167–175, doi: https://doi.org/10.1680/jsuin.17.00069
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