首页|PCL/HA静电纺丝纤维涂层对可降解Mg/HA复合材料的表面改性:力学性能、腐蚀和生物相容性

PCL/HA静电纺丝纤维涂层对可降解Mg/HA复合材料的表面改性:力学性能、腐蚀和生物相容性

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采用搅拌铸造和挤压法制备Mg/HA复合材料,并在其表面采用静电纺丝法涂覆聚己内酯/羟基磷灰石(PCL/HA)纤维(2.5%和5%HA,质量分数),以提高其耐腐蚀性.力学性能测试结果表明,复合材料的压缩屈服强度从73 MPa(纯镁)提高到151 MPa,提高了 107%.SEM、EDS和XRD分析表明,HA颗粒分布在多孔涂层中.极化曲线结果表明,涂层试样的耐腐蚀性能均优于未涂覆试样.PCL涂层使样品的腐蚀电流密度降低了两个数量级.通过极化和体外腐蚀试验证明了 HA在涂层中的有效性.涂层和随后形成的Ca-P层阻碍了模拟体液与基体的接触和渗透,从而起到保护表面的作用.PCL/2.5%HA涂层样品的腐蚀速率最低,其平均值为0.98 mm/a,与未涂层样品相比,在14天内减少了 81%.根据3天MTT结果,使用PCL/2.5%HA涂层可使细胞活性从43%提高到121%.综上,涂覆PCL/2.5%HA纤维的Mg/HA复合材料在生物可吸收植入物方面具有广阔的应用前景.
Surface modification of biodegradable Mg/HA composite by electrospinning of PCL/HA fibers coating:Mechanical properties,corrosion,and biocompatibility
Mg/HA composite was fabricated using the stir-casting and extrusion processes and coated by electrospun PCL/HA fibers(2.5 and 5 wt.%HA)to enhance the corrosion resistance.The mechanical tests demonstrated an increment of 107%for the compressive yield strength of the composite(151 vs 73 MPa for pure magnesium).SEM,EDS,and XRD analysis illustrated that HA particles distribute in porous coatings.According to the polarization tests,all coated specimens show higher corrosion resistance compared to the uncoated ones.PCL coating reduces the corrosion current density of the sample by two orders of magnitude.The effectiveness of incorporating HA in the coatings was proved by polarization and in vitro corrosion tests.Employment of coatings and subsequent Ca-P layer formation prevents the penetration of simulated body fluid(SBF)and contact with the substrate,thus protecting the surface.PCL/2.5%HA coated sample has the lowest corrosion rate with an average value of 0.98 mm/a by a reduction of 81%compared to the uncoated composite in 14 d.Cell viability enhancement from 43%to 121%was achieved using PCL/2.5%HA coating according to 3 d 3-(4,5-dimethylthiazol-2-yl)-2,5-diphenyl tetrazolium bromide(MTT)results.In conclusion,Mg/HA composites coated with PCL/2.5%HA fibers appear promising for bioabsorbable implant applications.

magnesium compositecomposite coatingbiodegradabilityhydroxyapatitepolycaprolactone(PCL)fibers

M.SHAMSI、M.SEDIGHI、A.BAGHERI

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School of Mechanical Engineering,Iran University of Science and Technology,Tehran,Iran

镁基复合材料 复合涂层 生物可降解 羟基磷灰石 聚己内酯纤维

2024

中国有色金属学报(英文版)
中国有色金属学会

中国有色金属学报(英文版)

CSTPCD
影响因子:1.183
ISSN:1003-6326
年,卷(期):2024.34(5)