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Microstructural and Surface Texture Evaluation of Orthodontic Microimplants Covered with Bioactive Layers Enriched with Silver Nanoparticles

机译:覆盖着富含银纳米颗粒的生物活性层的正畸微植入物的微观结构和表面纹理评估

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Bacterial infections are a common cause of clinical complications associated with the use of orthodontic microimplants. Biofilm formation on their surfaces and subsequent infection of peri-implant tissues can result in either exfoliation or surgical removal of these medical devices. In order to improve the properties of microimplants, hybrid coatings enriched with silver nanoparticles, calcium, and phosphorus were investigated. The present study aimed to assess the microstructure of commercially available microimplants composed of a medical TiAlV (Ti6Al4V) alloy covered with organic-inorganic layers obtained by the sol-gel method using the dip-coating technique. The microstructures and elemental surface compositions of the sterile, etched, and layer-modified microimplants were characterized by scanning electron microscopy with X-ray energy-dispersive spectroscopy (SEM-EDS). Elements such as silver (Ag), calcium (Ca), phosphorus (P), silicon (Si), oxygen (O), and carbon (C) were detected on the microimplant's surface layer. The SEM observations revealed that control microimplants (unetched) had smooth surfaces with only manufacturing-related embossing, while etching in hydrofluoric acid increased the surface roughness and introduced fluoride onto the microimplants. Layers with only silver nanoparticles reduced the roughness of the implant surface, and no extrusion was observed, while increased roughness and emerging porosity were observed when the layers were enriched with calcium and phosphorus. The highest roughness was observed in the microimplants etched with AgNPs and CaP, while the AgNPs-only layer showed a reduction in the roughness average parameter due to lower porosity. Enhancing the effectiveness of microimplants can be achieved by applying selective surface treatments to different parts. By keeping the outer tissue contact area smooth while making the bone contact area rough to promote stronger integration with bone tissue, the overall performance of the implants can be significantly improved.
机译:细菌感染是与使用正畸微型种植体相关的临床并发症的常见原因。其表面的生物膜形成和随后的种植体周围组织的感染可导致这些医疗器械的剥落或手术移除。为了改善微植入物的性能,研究了富含银纳米颗粒、钙和磷的杂化涂层。本研究旨在评估市售微植入物的微观结构,该微植入物由医用 TiAlV (Ti6Al4V) 合金组成,该合金覆盖有有机-无机层,通过溶胶-凝胶法使用浸涂技术获得。通过扫描电子显微镜和 X 射线能量色散光谱 (SEM-EDS) 对无菌、刻蚀和层改性微植入物的微观结构和元素表面组成进行了表征。在微植入物的表层检测到银 (Ag)、钙 (Ca)、磷 (P)、硅 (Si)、氧 (O) 和碳 (C) 等元素。SEM 观察显示,对照微植入物(未蚀刻)具有光滑的表面,只有与制造相关的压花,而氢氟酸蚀刻会增加表面粗糙度并将氟化物引入微植入物。仅含有银纳米颗粒的层降低了植入物表面的粗糙度,并且没有观察到挤压,而当层富含钙和磷时,观察到粗糙度增加和出现的孔隙率。在用 AgNPs 和 CaP 蚀刻的微植入物中观察到最高的粗糙度,而由于孔隙率较低,仅 AgNPs 层显示出粗糙度平均参数的降低。可以通过对不同部件进行选择性表面处理来提高微植入物的有效性。通过保持外部组织接触区光滑,同时使骨接触区粗糙,以促进与骨组织更强的整合,可以显着提高植入物的整体性能。

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