利用电子束物理气相沉积(EB-PVD)在 AZ91D 上镀 Si/ZrO2 生物陶瓷涂层的生物相容性和耐腐蚀性,用于先进的生物医学应用

Metals Pub Date : 2024-05-21 DOI:10.3390/met14060607
A. Thirugnanasambandam, M. Gupta, Rama Murugapandian
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引用次数: 0

摘要

本文采用电子束物理气相沉积(EBPVD)方法,在 8 kV 的恒定电压和 1 Å/s 的沉积速率下,在 AZ91D 合金上沉积了 ZrO2 和 Si + ZrO2 复合涂层。此外,还按照 ASTM 标准对样品进行了表面形貌、相分析、附着力、腐蚀和抗菌性能检测。与 ZrO2 涂层相比,即使涂层厚度增加了 18%,复合(Si + ZrO2)涂层的附着强度也明显下降(9%)。然而,复合(Si + ZrO2)涂层改善了润湿性,这是因为硅醇促进了与水分子的氢键结合,从而提高了二氧化硅的表面能并增加了其亲水性。此外,润湿性和表面粗糙度的增加有可能提高细胞的附着力和增殖能力。涂层样品的腐蚀电位(Ecorr)值在电位极化曲线上呈现正向移动,表明它们在人造血浆(ABP)电解液中的耐腐蚀性能大幅提高。同样,两种涂层腐蚀样品的扫描电镜图像在 ABP 溶液中受影响较小,表明涂层减轻了严重裂纹和微孔,保护它们免受腐蚀。Si + ZrO2 涂层在防止金黄色葡萄球菌的细菌渗透方面表现出色,从而抑制了随后生物膜的形成。此外,这些涂层还能提高成纤维细胞的活力,使细胞更好地扩散和增殖。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Biocompatibility and Corrosion Resistance of Si/ZrO2 Bioceramic Coating on AZ91D Using Electron Beam Physical Vapor Deposition (EB-PVD) for Advanced Biomedical Applications
Herein, ZrO2 and Si + ZrO2 composite coatings on AZ91D alloys are deposited at a constant voltage of 8 kV and 1 Å/s deposition rate using the electron beam physical vapor deposition (EBPVD) method. Further, the samples are examined for surface morphology, phase analysis, adhesion, corrosion, and antibacterial properties, as per ASTM standards. The adhesion strength of the composite (Si + ZrO2) coating nominally dropped (9%) compared to the ZrO2 coating even when the coating thickness increased by 18%. However, the composite (Si + ZrO2) coating improved wettability because silanol promotes hydrogen bonding with water molecules, which elevates the surface energy of the silica and increases its hydrophilic nature. Further, increased wettability and surface roughness have the potential to improve cell adhesion and proliferation. The corrosion potential (Ecorr) values of the coated samples exhibited a positive shift in the potentiodynamic polarization curve, indicating a substantial increase in their corrosion resistance in the artificial blood plasma (ABP) electrolyte. Similarly, SEM images of both coated corroded samples are less affected in the ABP solution, indicating that the coating mitigated heavy cracks and micropores, protecting them from corrosion. The Si + ZrO2 coatings exhibited exceptional performance in preventing bacterial infiltration by Staphylococcus aureus, thus inhibiting the subsequent formation of biofilms. In addition, these coatings demonstrate improved vitality among fibroblast cells, enabling better cellular spreading and proliferation.
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