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含金纳米粒子的生物活性玻璃。煅烧温度对结构、形态和表面性能的影响。

Bioactive glasses containing Au nanoparticles. Effect of calcination temperature on structure, morphology, and surface properties.

机构信息

Department of Chemistry, University of Modena and Reggio Emilia, Via Campi 183, 4110 Modena, Italy.

出版信息

Langmuir. 2010 Jun 15;26(12):10303-14. doi: 10.1021/la100472p.

Abstract

Bioactive glasses containing gold nanoparticles (AuNPs) have been synthesized via the sol-gel route using HAuCl(4) x 3 H(2)O as gold precursor. The formation process of AuNPs was studied as a function of the thermal treatment, which induces nucleation of Au particles and influences their nature, optical properties, shape, size, and distribution. The physicochemical characterization indicates that the sample treated at 600 degrees C presents the best characteristics to be used as a bioactive material, namely high surface area, high amount of AuNPs located at the glass surface, presence of micropores, and abundant surface OH groups. In the case of samples either aged at 60 degrees C or calcined at 150 degrees C, AuNPs just begin their formation, and at this stage the gel is not completely polymerized and dried yet. A thermal treatment at higher temperatures (900 degrees C) causes the aggregation of AuNPs, forming "AuMPs" (i.e., Au microparticles) in a densified glass-ceramic material with low surface area, absence of pores, and low number of surface OH groups. These features induce in the glass-ceramic materials treated at high-temperatures a lower bioactivity (evidenced by SBF reaction), as compared with that exhibited by the glass samples treated at 600 degrees C.

摘要

采用 HAuCl(4) x 3 H(2)O 作为金前驱体,通过溶胶-凝胶法合成了含有金纳米粒子(AuNPs)的生物活性玻璃。研究了 AuNPs 的形成过程作为热处理的函数,这会诱导 Au 颗粒的成核并影响其性质、光学性质、形状、大小和分布。物理化学特性表明,在 600°C 下处理的样品具有作为生物活性材料的最佳特性,即高比表面积、位于玻璃表面的大量 AuNPs、存在微孔和丰富的表面 OH 基团。对于在 60°C 下老化或在 150°C 下煅烧的样品,AuNPs 才刚刚开始形成,此时凝胶尚未完全聚合和干燥。在更高温度(900°C)下的热处理会导致 AuNPs 聚集,在具有低比表面积、无孔和低表面 OH 基团的致密玻璃陶瓷材料中形成“AuMPs”(即 Au 微米颗粒)。这些特征导致在高温处理的玻璃陶瓷材料中,生物活性(通过 SBF 反应证明)低于在 600°C 下处理的玻璃样品。

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