Haifeng Qin
University of Akron
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Publication
Featured researches published by Haifeng Qin.
Journal of The Mechanical Behavior of Biomedical Materials | 2016
Chang Ye; Xianfeng Zhou; Abhishek Telang; Hongyu Gao; Zhencheng Ren; Haifeng Qin; Sergey Suslov; Seetha R. Mannava; Dong Qian; Gary L. Doll; Ashlie Martini; Nita Sahai; Vijay K. Vasudevan
We report herein the effects of Ultrasonic Nano-crystal Surface Modification (UNSM), a severe surface plastic deformation process, on the microstructure, mechanical (hardness, wear), wettability and biocompatibility properties of NiTi shape memory alloy. Complete surface amorphization of NiTi was achieved by this process, which was confirmed by X-ray diffraction and high-resolution transmission electron microscopy. The wear resistance of the samples after UNSM processing was significantly improved compared with the non-processed samples due to increased surface hardness of the alloy by this process. In addition, cell culture study demonstrated that the biocompatibility of the samples after UNSM processing has not been compromised compared to the non-processed sample. The combination of high wear resistance and good biocompatibility makes UNSM an appealing process for treating alloy-based biomedical devices.
Materials Science and Engineering: C | 2017
Xiaoning Hou; Haifeng Qin; Hongyu Gao; Steven Mankoci; Ruixia Zhang; Xianfeng Zhou; Zhencheng Ren; Gary L. Doll; Ashlie Martini; Nita Sahai; Yalin Dong; Chang Ye
Magnesium alloys have tremendous potential for biomedical applications due to their good biocompatibility, osteoconductivity, and degradability, but can be limited by their poor mechanical properties and fast corrosion in the physiological environment. In this study, ultrasonic nanocrystal surface modification (UNSM), a recently developed surface processing technique that utilizes ultrasonic impacts to induce plastic strain on metal surfaces, was applied to an AZ31B magnesium (Mg) alloy. The mechanical properties, corrosion resistance, and biocompatibility of the alloy after UNSM treatment were studied systematically. Significant improvement in hardness, yield stress and wear resistance was achieved after the UNSM treatment. In addition, the corrosion behavior of UNSM-treated AZ31B was not compromised compared with the untreated samples, as demonstrated by the weight loss and released element concentrations of Mg and Al after immersion in alpha-minimum essential medium (α-MEM) for 24h. The in vitro biocompatibility of the AZ31B Mg alloys toward adipose-derived stem cells (ADSCs) before and after UNSM processing was also evaluated using a cell culture study. Comparable cell attachments were achieved between the two groups. These studies showed that UNSM could significantly improve the mechanical properties of Mg alloys without compromising their corrosion rate and biocompatibility in vitro. These findings suggest that UNSM is a promising method to treat biodegradable Mg alloys for orthopaedic applications.
Materials Science and Engineering: C | 2018
Xiaoning Hou; Steven Mankoci; Nicholas Walters; Hongyu Gao; Ruixia Zhang; Shengxi Li; Haifeng Qin; Zhencheng Ren; Gary L. Doll; Hongbo Cong; Ashlie Martini; Vijay K. Vasudevan; Xianfeng Zhou; Nita Sahai; Yalin Dong; Chang Ye
Hierarchical structures on metallic implants can enhance the interaction between cells and implants and thus increase their biocompatibility. However, it is difficult to directly fabricate hierarchical structures on metallic implants. In this study, we used a simple one-step method, ultrasonic nanocrystal surface modification (UNSM), to fabricate hierarchical surface structures on a nickel-titanium (NiTi) alloy. During UNSM, a tungsten carbide ball hits metal surfaces at ultrasonic frequency. The overlapping of the ultrasonic strikes generates hierarchical structures with microscale grooves and embedded nanoscale wrinkles. Cell culture experiments showed that cells adhere better and grow more prolifically on the UNSM-treated samples. Compared with the untreated samples, the UNSM-treated samples have higher corrosion resistance. In addition, the surface hardness increased from 243u202fHv to 296u202fHv and the scratch hardness increased by 22%. Overall, the improved biocompatibility, higher corrosion resistance, and enhanced mechanical properties demonstrate that UNSM is a simple and effective method to process metallic implant materials.
Journal of Materials Processing Technology | 2017
Chi Ma; Mohsen Taheri Andani; Haifeng Qin; Narges Shayesteh Moghaddam; Hamdy Ibrahim; Ahmadreza Jahadakbar; Amirehesam Amerinatanzi; Zhencheng Ren; Hao Zhang; Gary L. Doll; Yalin Dong; Mohammad Elahinia; Chang Ye
International Journal of Fatigue | 2017
Hao Zhang; Richard Chiang; Haifeng Qin; Zhencheng Ren; Xiaoning Hou; Dong Lin; Gary L. Doll; Vijay K. Vasudevan; Yalin Dong; Chang Ye
Surface & Coatings Technology | 2017
Jun Liu; Sergey Suslov; Shengxi Li; Haifeng Qin; Zhencheng Ren; Chi Ma; Guo-Xiang Wang; Gary L. Doll; Hongbo Cong; Yalin Dong; Chang Ye
Journal of Alloys and Compounds | 2017
Chi Ma; Haifeng Qin; Zhencheng Ren; Stephanie O'keeffe; Joseph Stevick; Gary L. Doll; Yalin Dong; Bartłomiej Winiarski; Chang Ye
Materials & Design | 2018
Yuan Liang; Haifeng Qin; Nitin Mehra; Jiahua Zhu; Zhengnan Yang; Gary L. Doll; Chang Ye; Yalin Dong
Advanced Engineering Materials | 2018
Jun Liu; Sergey Suslov; Shengxi Li; Haifeng Qin; Zhencheng Ren; Gary L. Doll; Hongbo Cong; Yalin Dong; Chang Ye
Surface & Coatings Technology | 2017
Hao Zhang; Haifeng Qin; Zhencheng Ren; Jingyi Zhao; Xiaoning Hou; Gary L. Doll; Yalin Dong; Chang Ye