Xue-jun Cui
Sichuan University of Science and Engineering
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Featured researches published by Xue-jun Cui.
Transactions of Nonferrous Metals Society of China | 2016
Xue-jun Cui; Ruisong Yang; Chun-hai Liu; Zu-xiao Yu; Xiu-zhou Lin
Abstract A hydrophobic surface was fabricated on a micro-arc oxidation (MAO) treated AZ31 Mg alloys via surface modification with myristic acid. The effects of modification time on the wettability of the coatings were investigated using the contact angle measuring device. The surface morphologies and structure of the coatings were evaluated using SEM, XRD and FT-IR. The corrosion resistance was investigated by potentiodynamic polarization curves and long-term immersion test. The results showed that the water contact angle (CA) increases gradually with modification time from 0 to 5 h, the highest CA reaches 138° after being modified for 5 h, and the number and size of the micro pores are decreased. The modification method hardly alters crystalline structure of the MAO coating, but improves the corrosion resistance based on the much positive potential and low current density. Moreover, the corrosion resistance and hydrophobicity can be enhanced with increasing the alkyl chain. The wetting and spreading for the alkylcarboxylate with low surface energy become easier on the micro-porous surface, and alkylcarboxylate monolayer will be formed through bidentate bonding, which changes the surface micropores to a sealing or semi-sealing structure and makes the MAO coating dense and hydrophobic. All the results demonstrate that the modification process improves the corrosion protection ability of the MAO coating on AZ31B Mg alloy.
Transactions of Nonferrous Metals Society of China | 2012
Xue-jun Cui; Chun-hai Liu; Rui-song Yang; Mingtian Li; Xiu-zhou Lin; Min Gong
A phosphate solution free of chromate, fluoride and nitrite was prepared and an environment-friendly film was obtained on AZ31 magnesium alloy surface via the chemical deposition method. The morphology, composition, phase structure and its corrosion resistance were studied. The effects of film-forming temperature and free acid on corrosion resistance, microstructure and electrochemical behavior of the film were discussed. The results indicate that the corrosion resistance of AZ31 with the phosphate film was better than blank AZ31 substrate, which was most attributed to the great inhibitive action on the anodic dissolution and cathodic hydrogen evolution of the film.
Materials Science and Engineering: C | 2017
Xuedan Chen; Q. S. Fu; Yongzhong Jin; Mingtian Li; Ruisong Yang; Xue-jun Cui; Min Gong
Porous titanium (PT) is considered as a promising biomaterials for orthopedic implants. Besides biocompatibility and mechanical properties, corrosion resistance in physiological environment is the other important factor affecting the long stability of an implant. In order to investigate the corrosion behavior of porous titanium implants in a dynamic physiological environment, a dynamic circle system was designed in this study. Then a titanium-based implant with PT coating was fabricated by plasma spraying. The corrosion resistance of PT samples in flowing 0.9% NaCl solution was evaluated by electrochemical measurements. Commercial pure solid titanium (ST) disc was used as a control. The studies of potentiodynamic polarization and electrochemical impedance spectroscopy (EIS) show that the pores in the PT play a negetive part in corrosion resistance and the flowing electrolyte can increase the corrosive rate of all titanium samples. The results suggest that pore design of titanium implants should pay attention to the effect of dynamic process of a physiological environment on the corrosion behavior of implants.
Anti-corrosion Methods and Materials | 2017
Xue-jun Cui; Yingjun Zhang; Baojie Dou; Xian-Guang Zeng; Xiu-Zhou Lin
Purpose This paper aims to investigate the effects of deposition time on the structure and anti-corrosion properties of a micro-arc oxidation (MAO)/Al coating on AZ31B Mg alloy. Design/methodology/approach The study describes the fabrication of the coating via a combined process of MAO with multi-arc ion plating. The structure, composition and corrosion resistance of the coatings were evaluated using scanning electron microscopy, energy dispersive spectroscopy, X-ray diffraction and electrochemical methods. Findings The Al-layer is tightly deposited with a good mechanical interlock along the rough interface due to the Al diffusion. However, the Al layer reduces the anti-corrosion of MAO-coated Mg alloy because of structural defects such as droplets and cavities, which act as channels for corrosive media infiltration towards the substrate. Fortunately, the Al layer improves the substrate corrosion resistance owing to its passive behaviour, and the corrosion resistance can be enhanced with increasing deposition time. All results indicate that a buffer layer fabricated through the duplex process improves the interfacial compatibility between the hard coating and soft Mg alloys. Originality/value An MAO/Al duplex coating was fabricated via a combined process of MAO and physical vapour deposition. MAO/Al duplex coatings exhibit obviously passive behaviours on AZ31 Mg alloy. The structure and corrosion resistance of MAO/Al coatings were investigated.
Materials Research Innovations | 2013
C. H. Liu; Yong Zhong Jin; Xue-jun Cui; Ruisong Yang; Q. S. Fu; L. Wang; J. Tang; S. Ye
Abstract An ultrathin Mo (7 nm)/MoN (3 nm) bilayer film covered by Cu film was deposited on the Si substrate using reactive magnetron sputtering in N2/Ar ambient. The film stacks of Cu/Mo (7 nm)/MoN (3 nm)/Si were then annealed in a vacuum chamber at 500–800°C for 1 h. X-ray diffraction, scanning electron microscopy, cross-sectional transmission electron microscopy and energy dispersive X-ray spectroscopy line scans were employed to investigate the microstructure evolution and the diffusion behaviour of the film stacks. The results show that the Mo (7 nm)/MoN (3 nm) bilayer film as a diffusion barrier has sufficient interface stability, which can prevent Cu atom diffusion at elevated temperatures up to 700°C. The relationship between the interface stability and the microstructure of the bilayer barrier is characterised in detail.
Corrosion Science | 2015
Xue-jun Cui; Xiu-zhou Lin; Chun-hai Liu; Ruisong Yang; Xingwen Zheng; Min Gong
Corrosion Science | 2013
Xue-jun Cui; Chun-hai Liu; Rui-song Yang; Q. S. Fu; Xiu-zhou Lin; Min Gong
Surface & Coatings Technology | 2015
Xue-jun Cui; Chun-hai Liu; Ruisong Yang; Mingtian Li; Xiu-zhou Lin
Applied Surface Science | 2016
Xue-jun Cui; Mingtian Li; Ruisong Yang; Zuxiao Yu
Physics Procedia | 2012
Xue-jun Cui; Chun-hai Liu; Rui-song Yang; Xiu-zhou Lin; Min Gong