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| 1 | Corrosion Behavior of AZ91D Magnesium Alloy in Three Different Physiological Environments显示文摘 | Juncen Zhou Qing Li Haixiao Zhang Funan Chen | 2014 | Journal of Materials Engineering and Performance2014,,1: | 1 |
| 2 | Corrosion behavior of AZ91D magnesium alloy in three different physiological environments 显示文摘 | Zhou Juncen Li Qing Zhang Haixiao | 2014 | Journal of Materials Engineering and Performance2014,230,: | 1 |
| 3 | Researching the fabrication of anticorrosion superhydrophobic surface on magnesium alloy and its mechanical stability and durability显示文摘 | Zuxin She Qing Li Zhongwei Wang Longqin Li Funan Chen Juncen Zhou | 2013 | Chemical Engineering Journal2013,,: | 1 |
| 4 | Maternal genetic structure of a neolithic population of the Yangshao culture显示文摘The Yangshao culture is one of the most influential Neolithic cultures in East Asia.The populations associated with the Yangshao culture were widely distributed along the Yellow River basin and were suggested to play a profound role in the present-day East Asians.To date,the population of the Yangshao culture is largely investigated through archaeological studies. | Bo Miao Yichen Liu Wanfa Gu Qingli Wei Qian Wu Wenjun Wang Ming Zhang Manyu Ding Tianyi Wang Juncen Liu Feng Liu Peng Cao Qingyan Dai Ruowei Yang Xiaotian Feng Wanjing Ping Weihong Hou Haibing Yuan Qiaomei Fu | 2021 | Journal of Genetics and Genomics2021,48,8: | 0 |
| 5 | Hierarchical porous hollow graphitized carbon@MoS_(2)with wideband EM dissipation capability显示文摘Core-shell materials are promising broadband electromagnetic(EM)absorption materials since the highly component manipulation performance,interfacial effect etc.Herein,a well-defined core-shell shaped structure constructed by 2-dimensional Mo S_(2)nanosheets-coated porous hollow carbon has been successfully designed with controlled pore-sizes of the core,adjustable shell content,and structure.By effectively optimizing the parameters for these factors,the as-prepared hierarchical porous hollow C@Mo S_(2)sample enables an ultra-width EM absorption ability(covering 11.4-18.0 GHz)at a thickness of only 2.0 mm.The detailed contributions of each component and structure on the excellent EM absorption capability have been investigated.These encouraging results indicate that the development of core-shell composites with multiple controllable physical factors is of great significance for the future ultra-wideband electromagnetic absorbers. | Lieji Yang Tianwei Deng Zirui Jia Xiaodi Zhou Hualiang Lv Yutao Zhu Juncen Liu Zhihong Yang | 2021 | Journal of Materials Science & Technology2021,,24: | 0 |
| 6 | Customized Additive Manufacturing in Bone Scaffolds-The Gateway to Precise Bone Defect Treatment显示文摘In the advancing landscape of technology and novel material development,additive manufacturing(AM)is steadily making strides within the biomedical sector.Moving away from traditional,one-sizefits-all implant solutions,the advent of AM technology allows for patient-specific scaffolds that could improve integration and enhance wound healing.These scaffolds,meticulously designed with a myriad of geometries,mechanical properties,and biological responses,are made possible through the vast selection of materials and fabrication methods at our disposal.Recognizing the importance of precision in the treatment of bone defects,which display variability from macroscopic to microscopic scales in each case,a tailored treatment strategy is required.A patient-specific AM bone scaffold perfectly addresses this necessity.This review elucidates the pivotal role that customized AM bone scaffolds play in bone defect treatment,while offering comprehensive guidelines for their customization.This includes aspects such as bone defect imaging,material selection,topography design,and fabrication methodology.Additionally,we propose a cooperative model involving the patient,clinician,and engineer,thereby underscoring the interdisciplinary approach necessary for the effective design and clinical application of these customized AM bone scaffolds.This collaboration promises to usher in a new era of bioactive medical materials,responsive to individualized needs and capable of pushing boundaries in personalized medicine beyond those set by traditional medical materials. | Juncen Zhou Carmine Wang See Sai Sreenivasamurthy Donghui Zhu | 2023 | Research2023,,4: | 0 |
| 7 | Blending with transition metals improves bioresorbable zinc as better medical implants显示文摘Zinc(Zn)is a new class of bioresorbable metal that has potential for cardiovascular stent material,orthopedic implants,wound closure devices,etc.However,pure Zn is not ideal for these applications due to its low mechanical strength and localized degradation behavior.Alloying is the most common/effective way to overcome this limitation.Still,the choice of alloying element is crucial to ensure the resulting alloy possesses sufficient mechanical strength,suitable degradation rate,and acceptable biocompatibility.Hereby,we proposed to blend selective transition metals(i.e.,vanadium-V,chromium-Cr,and zirconium-Zr)to improve Zn’s properties.These selected transition metals have similar properties to Zn and thus are beneficial for the metallurgy process and mechanical property.Furthermore,the biosafety of these elements is of less concern as they all have been used as regulatory approved medical implants or a component of an implant such as Ti6Al4V,CoCr,or Zr-based dental implants.Our study showed the first evidence that blending with transition metals V,Cr,or Zr can improve Zn’s properties as bioresorbable medical implants.In addition,three in vivo implantation models were explored in rats:subcutaneous,aorta,and femoral implantations,to target the potential clinical applications of bioresorbable Zn implants. | Yingchao Su Jiayin Fu Juncen Zhou Elias Georgas Shaokang Du Yi-Xian Qin Yadong Wang Yufeng Zheng Donghui Zhu | 2023 | Bioactive Materials2023,,2: | 0 |