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首页> 外文期刊>Cell Biology and Toxicology >Pulsed laser deposition temperature effects on strontium-substituted hydroxyapatite thin films for biomedical implants
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Pulsed laser deposition temperature effects on strontium-substituted hydroxyapatite thin films for biomedical implants

机译:脉冲激光沉积温度对生物医学植入物的锶取代的羟基磷灰石薄膜效应

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Substituting small molecule drugs with abundant and easily affordable ions may have positive effects on the way countless disease treatments are approached. The interest in strontium cation in bone therapies soared in the wake of the success of strontium ranelate in the treatment of osteoporosis. A new method for producing thin strontium-containing hydroxyapatite (Sr-HA, Ca9Sr(PO4)(6)(OH)(2)) films as coatings that render bioinert titanium implant bioactive is reported here. The method is based on the combination of a mechanochemical synthesis of Sr-HA targets and their deposition in form of thin films on top of titanium with the use of laser ablation at low pressure. The films were 1-2 mu m in thickness and their formation was studied at different temperatures, including 25, 300, and 500 degrees C. Highly crystalline Sr-HA target transformed during pulsed laser deposition to a fully amorphous film, whose degree of long-range order recovered with temperature. Particle edges became somewhat sharper and surface roughness moderately increased with temperature, but the (Ca+Sr)/P atomic ratio, which increased 1.5 times during the film formation, remained approximately constant at different temperatures. Despite the mostly amorphous structure of the coatings, their affinity for capturing atmospheric carbon dioxide and accommodating it as carbonate ions that replace both phosphates and hydroxyls of HA was confirmed in an X-ray photoelectron spectroscopic analysis. As the film deposition temperature increased, the lattice voids got reduced in concentration and the structure gradually "closed," becoming more compact and entailing a linear increase in microhardness with temperature, by 0.03 GPa/degrees C for the entire 25-500 degrees C range. Biocompatibility and bioactivity of Sr-HA thin films deposited on titanium were confirmed in an interaction with dental pulp stem cells, suggesting that these coatings, regardless of the processing temperature, may be viable candidates for the surface components of metallic bone implants.
机译:用大量廉价的离子替代小分子药物可能会对无数疾病治疗方法产生积极影响。雷奈酸锶在骨质疏松症治疗中取得成功后,人们对锶离子在骨治疗中的应用兴趣激增。本文报道了一种制备含锶羟基磷灰石(Sr-HA,Ca9Sr(PO4)(6)(OH)(2))薄膜作为涂层的新方法,该涂层使生物惰性钛植入物具有生物活性。该方法基于机械力化学合成Sr-HA靶材,并将其以薄膜形式沉积在钛表面,同时使用低压激光烧蚀。薄膜厚度为1-2μm,并在不同温度(包括25、300和500℃)下对其形成进行了研究。在脉冲激光沉积期间,高结晶性Sr-HA靶转变为完全非晶态薄膜,其长程有序度随温度恢复。随着温度的升高,(Ca+Sr)/P原子比在成膜过程中增加了1.5倍,但在不同温度下,颗粒边缘变得更尖锐,表面粗糙度适度增加。尽管涂层的结构大多为非晶态,但X射线光电子能谱分析证实了它们对捕获大气中二氧化碳的亲和力,并将其调节为取代HA的磷酸盐和羟基的碳酸盐离子。随着薄膜沉积温度的升高,晶格空洞的浓度降低,结构逐渐“闭合”,变得更加紧密,显微硬度随温度线性增加,在整个25-500摄氏度范围内增加0.03 GPa/摄氏度。通过与牙髓干细胞的相互作用,证实了沉积在钛表面的Sr-HA薄膜的生物相容性和生物活性,表明这些涂层,无论加工温度如何,可能是金属骨植入物表面组件的可行候选材料。

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