Ab initio study of precipitate stability in an Mg–Zn–Zr–Y alloy and its effects on corrosion, antimicrobial and in vitro biocompatibility

IF 6.1 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Satyabrata Nigamananda Sahoo, Indu Avula, Santanu Mandal, Surasree Pal, Vamsi Krishna Balla and Mangal Roy
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Abstract

Magnesium (Mg) alloy has long been projected as a degradable biomaterial with a special focus on its corrosion behaviour, mechanical properties and biocompatibility. In this study, we developed an Mg–5Zn–0.5Zr–0.9Y alloy and studied the effects of Mg7Zn3 and Mg24Y5 precipitates on its mechanical, corrosion, antimicrobial, and in vitro biocompatibility properties. The cast specimen exhibited a continuous network of Mg7Zn3 precipitates and a weaker basal texture, which adversely affected the mechanical and corrosion properties. The application of thermomechanical treatment preferentially dissolutes the Mg7Zn3 precipitate network compared to the Mg24Y5 precipitate owing to its lower cohesive energy, lower enthalpy of formation and lower bonding electrons, as calculated using the first principle study. This resulted in a significant reduction in the volta potential difference between the precipitates and the matrix, which simultaneously improved corrosion resistance and ductility. Moreover, the increased area fraction of Mg24Y5 fine precipitates in the forged specimen contributed to its enhanced corrosion resistance. DFT calculations indicated a lower total density of state (DOS) value near the Fermi energy level of Mg24Y5, which retarded electron loss capability and thereby reduced the corrosion rate. The higher corrosion resistance of the forged sample was due to lower defect density, as determined through Mott–Schottky analysis. All samples exhibited excellent antimicrobial properties against Gram-negative E. coli bacteria. Improved degradation properties of the forged specimen enhanced cell viability and alkaline phosphatase activity against MC3T3-E1 cells, indicating its non-toxic nature.

Mg-Zn-Zr-Y合金中沉淀稳定性的从头算研究及其对腐蚀、抗菌和体外生物相容性的影响。
镁合金作为一种可降解的生物材料,其腐蚀性能、力学性能和生物相容性一直备受关注。本研究制备了一种Mg-5Zn-0.5Zr-0.9Y合金,并研究了Mg7Zn3和Mg24Y5析出物对其力学、腐蚀、抗菌和体外生物相容性的影响。铸态试样的Mg7Zn3析出相呈连续网状,基底织构较弱,这对合金的力学性能和腐蚀性能有不利影响。根据第一性原理计算,与Mg24Y5相相相比,热处理的应用更有利于Mg7Zn3相相网络的溶解,因为Mg7Zn3相的结合能更低,形成焓更低,成键电子更少。这使得析出相和基体之间的伏特电位差显著降低,同时提高了耐腐蚀性和延展性。此外,锻造试样中Mg24Y5细相的面积分数增加有助于提高其耐蚀性。DFT计算表明,Mg24Y5在费米能级附近的总态密度(DOS)值较低,这延缓了电子损失能力,从而降低了腐蚀速率。通过莫特-肖特基分析确定,锻造样品的耐腐蚀性较高是由于较低的缺陷密度。所有样品对革兰氏阴性大肠杆菌均表现出优异的抗菌性能。锻造样品的降解性能得到改善,增强了细胞活力和对MC3T3-E1细胞的碱性磷酸酶活性,表明其无毒性质。
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来源期刊
Journal of Materials Chemistry B
Journal of Materials Chemistry B MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.30%
发文量
866
期刊介绍: Journal of Materials Chemistry A, B & C cover high quality studies across all fields of materials chemistry. The journals focus on those theoretical or experimental studies that report new understanding, applications, properties and synthesis of materials. Journal of Materials Chemistry A, B & C are separated by the intended application of the material studied. Broadly, applications in energy and sustainability are of interest to Journal of Materials Chemistry A, applications in biology and medicine are of interest to Journal of Materials Chemistry B, and applications in optical, magnetic and electronic devices are of interest to Journal of Materials Chemistry C.Journal of Materials Chemistry B is a Transformative Journal and Plan S compliant. Example topic areas within the scope of Journal of Materials Chemistry B are listed below. This list is neither exhaustive nor exclusive: Antifouling coatings Biocompatible materials Bioelectronics Bioimaging Biomimetics Biomineralisation Bionics Biosensors Diagnostics Drug delivery Gene delivery Immunobiology Nanomedicine Regenerative medicine & Tissue engineering Scaffolds Soft robotics Stem cells Therapeutic devices
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