Design of novel Zn-Ag-Zr alloy with enhanced strength as a potential biodegradable implant material
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J. Kawałko | K. Mech | M. Marciszko | P. Bała | M. Banzhaf | M. Wątroba | W. Bednarczyk | G. Boelter | Gabriela Boelter
[1] Yufeng Zheng,et al. Additive manufacturing of biodegradable Zn-xWE43 porous scaffolds: Formation quality, microstructure and mechanical properties , 2019, Materials & Design.
[2] C. Shuai,et al. Laser additive manufacturing of Zn-2Al part for bone repair: Formability, microstructure and properties , 2019, Journal of Alloys and Compounds.
[3] J. Kawałko,et al. Determination of room-temperature superplastic asymmetry and anisotropy of Zn-0.8Ag alloy processed by ECAP , 2019, Materials Science and Engineering: A.
[4] C. Shuai,et al. Biodegradable metallic bone implants , 2019, Materials Chemistry Frontiers.
[5] M. Dargusch,et al. The influence of alloying and fabrication techniques on the mechanical properties, biodegradability and biocompatibility of zinc: A comprehensive review. , 2019, Acta biomaterialia.
[6] J. Kawałko,et al. Can zinc alloys be strengthened by grain refinement? A critical evaluation of the processing of low-alloyed binary zinc alloys using ECAP , 2019, Materials Science and Engineering: A.
[7] Diego Mantovani,et al. Current status and outlook on the clinical translation of biodegradable metals , 2019, Materials Today.
[8] F. Witte,et al. Biodegradable Metals , 2018, Biomaterials Science.
[9] J. Freeman,et al. Fabrication , 2018, Building Tissues.
[10] C. Cui,et al. Fabrication and properties of porous Zn-Ag alloy scaffolds as biodegradable materials , 2018, Materials Chemistry and Physics.
[11] Zhilin Liu. A New Approach Toward Designing and Synthesizing the Microalloying Zn Biodegradable Alloys with Improved Mechanical Properties , 2018, Metallurgical and Materials Transactions A.
[12] J. Kawałko,et al. Effect of zirconium microaddition on the microstructure and mechanical properties of Zn-Zr alloys , 2018, Materials Characterization.
[13] C. Shuai,et al. A combined strategy to enhance the properties of Zn by laser rapid solidification and laser alloying. , 2018, Journal of the mechanical behavior of biomedical materials.
[14] J. Kawałko,et al. Achieving room temperature superplasticity in the Zn-0.5Cu alloy processed via equal channel angular pressing , 2018 .
[15] J. Drelich,et al. Zinc-based alloys for degradable vascular stent applications. , 2018, Acta biomaterialia.
[16] U. E. Klotz,et al. Mechanical Characteristics, In Vitro Degradation, Cytotoxicity, and Antibacterial Evaluation of Zn-4.0Ag Alloy as a Biodegradable Material , 2018, International journal of molecular sciences.
[17] Ł. Rogal,et al. A new approach to plastic deformation of biodegradable zinc alloy with magnesium and its effect on microstructure and mechanical properties , 2018 .
[18] S. Saptarshi,et al. Biocompatibility and biodegradation studies of a commercial zinc alloy for temporary mini-implant applications , 2017, Scientific Reports.
[19] D. Kurniawan,et al. Processing of Zn-3Mg alloy by equal channel angular pressing for biodegradable metal implants , 2017 .
[20] M. Vedani,et al. Fabrication, mechanical properties and in vitro degradation behavior of newly developed ZnAg alloys for degradable implant applications. , 2017, Materials science & engineering. C, Materials for biological applications.
[21] H. Maier,et al. Zn-Li alloy after extrusion and drawing: Structural, mechanical characterization, and biodegradation in abdominal aorta of rat. , 2017, Materials science & engineering. C, Materials for biological applications.
[22] B. Fahlman,et al. In vitro and in vivo corrosion, mechanical properties and biocompatibility evaluation of MgF2-coated Mg-Zn-Zr alloy as cancellous screws. , 2017, Materials science & engineering. C, Materials for biological applications.
[23] M. Wróbel,et al. Zinc subjected to plastic deformation by complex loading and conventional extrusion: Comparison of the microstructure and mechanical properties , 2017 .
[24] J. Kubásek,et al. Microstructure and mechanical properties of the micrograined hypoeutectic Zn–Mg alloy , 2016, International Journal of Minerals, Metallurgy, and Materials.
[25] M. Maitz,et al. Comparative corrosion behavior of Zn with Fe and Mg in the course of immersion degradation in phosphate buffered saline , 2016 .
[26] Cuie Wen,et al. Mechanical properties, in vitro corrosion and biocompatibility of newly developed biodegradable Mg-Zr-Sr-Ho alloys for biomedical applications , 2016, Scientific Reports.
[27] Jonas Weissenrieder,et al. Degradation of zinc in saline solutions, plasma, and whole blood. , 2016, Journal of biomedical materials research. Part B, Applied biomaterials.
[28] D Mantovani,et al. Novel Zn-based alloys for biodegradable stent applications: Design, development and in vitro degradation. , 2016, Journal of the mechanical behavior of biomedical materials.
[29] Patrick K. Bowen,et al. Biodegradable Metals for Cardiovascular Stents: from Clinical Concerns to Recent Zn‐Alloys , 2016, Advanced healthcare materials.
[30] Yufeng Zheng,et al. Micro-alloying with Mn in Zn–Mg alloy for future biodegradable metals application , 2016 .
[31] D. Qiu,et al. Effect of Grain Refinement on Tensile Properties of Cast Zinc Alloys , 2016, Metallurgical and Materials Transactions A.
[32] P. Kumta,et al. Effects of grain refinement on the biocorrosion and in vitro bioactivity of magnesium. , 2015, Materials science & engineering. C, Materials for biological applications.
[33] J. Drelich,et al. Recent Advances in Biodegradable Metals for Medical Sutures: A Critical Review , 2015, Advanced healthcare materials.
[34] S. H. Chen,et al. Development of biodegradable Zn-1X binary alloys with nutrient alloying elements Mg, Ca and Sr , 2015, Scientific Reports.
[35] L. Stanciu,et al. Magnesium, Iron and Zinc Alloys, the Trifecta of Bioresorbable Orthopaedic and Vascular Implantation - A Review , 2015 .
[36] B. A. Okorie,et al. Effect of grain sizes on mechanical properties and biodegradation behavior of pure iron for cardiovascular stent application , 2014, Biomatter.
[37] D. Qiu,et al. The grain refining mechanism of cast zinc through silver inoculation , 2014 .
[38] N. Hadrup,et al. Oral toxicity of silver ions, silver nanoparticles and colloidal silver--a review. , 2014, Regulatory toxicology and pharmacology : RTP.
[39] P. Kumta,et al. In vitro degradation and cytotoxicity response of Mg-4% Zn-0.5% Zr (ZK40) alloy as a potential biodegradable material. , 2013, Acta biomaterialia.
[40] D. Qiu,et al. The Effect of Solute Elements on the Grain Refinement of Cast Zn , 2013, Metallurgical and Materials Transactions A.
[41] M. Jacques,et al. Zinc as an agent for the prevention of biofilm formation by pathogenic bacteria , 2013, Journal of applied microbiology.
[42] J. Drelich,et al. Zinc Exhibits Ideal Physiological Corrosion Behavior for Bioabsorbable Stents , 2013, Advanced materials.
[43] J. Kubásek,et al. Mechanical and corrosion properties of newly developed biodegradable Zn-based alloys for bone fixation. , 2011, Acta biomaterialia.
[44] Diego Mantovani,et al. Biodegradable Metals for Cardiovascular Stent Application: Interests and New Opportunities , 2011, International journal of molecular sciences.
[45] E. Hoek,et al. A review of the antibacterial effects of silver nanomaterials and potential implications for human health and the environment , 2010 .
[46] M. Pekguleryuz,et al. The recrystallization and texture of magnesium–zinc–cerium alloys , 2008 .
[47] E. Eisenbarth,et al. Biocompatibility of β-stabilizing elements of titanium alloys , 2004 .
[48] K. Tew,et al. Trace elements in human physiology and pathology: zinc and metallothioneins. , 2003, Biomedicine & pharmacotherapy = Biomedecine & pharmacotherapie.
[49] J. C. Huang,et al. Texture analysis in hexagonal materials , 2003 .
[50] J. Fundenberger,et al. Modelling and prediction of mechanical properties for materials with hexagonal symmetry (zinc, titanium and zirconium alloys) , 1997 .
[51] J. Dutkiewicz. The Zn-Zr (zinc-zirconium) system , 1992 .
[52] Deboarh A. Kramer,et al. Magnesium , 1982 .
[53] E. Hall,et al. The Deformation and Ageing of Mild Steel: III Discussion of Results , 1951 .
[54] E. Hall,et al. The Deformation and Ageing of Mild Steel , 1951 .
[55] Yufeng Zheng,et al. Enhanced antimicrobial properties, cytocompatibility, and corrosion resistance of plasma-modified biodegradable magnesium alloys. , 2014, Acta biomaterialia.
[56] A. Ngan,et al. Mechanical properties I , 2007 .