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通过射频磁控溅射沉积的亚微米级空心生物玻璃锥体:形成机制、性能及潜在的生物医学应用

Submicrometer Hollow Bioglass Cones Deposited by Radio Frequency Magnetron Sputtering: Formation Mechanism, Properties, and Prospective Biomedical Applications.

作者信息

Popa A C, Stan G E, Besleaga C, Ion L, Maraloiu V A, Tulyaganov D U, Ferreira J M F

机构信息

National Institute of Materials Physics , 077125 Magurele, Ilfov, Romania.

Army Centre for Medical Research , 010195 Bucharest, Romania.

出版信息

ACS Appl Mater Interfaces. 2016 Feb;8(7):4357-67. doi: 10.1021/acsami.6b00606. Epub 2016 Feb 15.

DOI:10.1021/acsami.6b00606
PMID:26836256
Abstract

This work reports on the unprecedented magnetron sputtering deposition of submicrometric hollow cones of bioactive glass at low temperature in the absence of any template or catalyst. The influence of sputtering conditions on the formation and development of bioglass cones was studied. It was shown that larger populations of well-developed cones could be achieved by increasing the argon sputtering pressure. A mechanism describing the growth of bioglass hollow cones is presented, offering the links for process control and reproducibility of the cone features. The composition, structure, and morphology of the as-synthesized hollow cones were investigated by energy dispersive spectroscopy (EDS), Fourier transform infrared spectroscopy (FTIR), grazing incidence geometry X-ray diffraction (GIXRD), scanning electron microscopy (SEM), and transmission electron microscopy (TEM)-selected area electron diffraction (SAED). The in vitro biological performance, assessed by degradation tests (ISO 10993-14) and cytocompatibility assays (ISO 10993-5) in endothelial cell cultures, was excellent. This allied with resorbability and the unique morphological features make the submicrometer hollow cones interesting candidate material devices for focal transitory permeabilization of the blood-brain barrier in the treatment of carcinoma and neurodegenerative disorders.

摘要

这项工作报道了在没有任何模板或催化剂的情况下,在低温下通过磁控溅射前所未有的方式沉积亚微米级生物活性玻璃空心锥。研究了溅射条件对生物玻璃锥形成和发育的影响。结果表明,通过提高氩溅射压力可以获得更多发育良好的锥。提出了一种描述生物玻璃空心锥生长的机制,为锥特征的过程控制和可重复性提供了联系。通过能量色散光谱(EDS)、傅里叶变换红外光谱(FTIR)、掠入射几何X射线衍射(GIXRD)、扫描电子显微镜(SEM)和透射电子显微镜(TEM)-选区电子衍射(SAED)研究了合成的空心锥的组成、结构和形态。通过在内皮细胞培养物中的降解试验(ISO 10993-14)和细胞相容性测定(ISO 10993-5)评估的体外生物学性能非常优异。这与可吸收性和独特的形态特征相结合,使得亚微米空心锥成为治疗癌症和神经退行性疾病时血脑屏障局部短暂通透化的有趣候选材料装置。

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