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首页> 外文期刊>ACS applied materials & interfaces >In Situ Growth of Hollow Gold-Silver Nanoshells within Porous Silica Offers Tunable Plasmonic Extinctions and Enhanced Colloidal Stability
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In Situ Growth of Hollow Gold-Silver Nanoshells within Porous Silica Offers Tunable Plasmonic Extinctions and Enhanced Colloidal Stability

机译:多孔二氧化硅内中空金银纳米壳的原位生长提供可调谐的等离子消光和增强的胶体稳定性

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摘要

Porous silica-coated hollow gold-silver nanoshells were successfully synthesized utilizing a procedure where the porous silica shell was produced prior to the transformation of the metallic core, providing enhanced control over the structure/composition of the bimetallic hollow core. By varying the reaction time and the precise amount of gold salt solution added to a porous silica-coated silver-core template solution, composite nanoparticles were tailored to reveal a readily tunable surface plasmon resonance that could be centered across the visible and near-IR spectral regions (similar to 445-800 nm). Characterization by X-ray photoelectron spectroscopy, energy-dispersive X-ray spectroscopy, scanning electron microscopy, and transmission electron microscopy revealed that the synthetic methodology afforded particles having uniform composition, size, and shape. The optical properties were evaluated by absorption/extinction spectroscopy. The stability of colloidal solutions of our composite nanoparticles as a function of pH was also investigated, revealing that the nanoshells remain intact over a wide range of conditions (i.e., pH 2-10). The facile tunability, enhanced stability, and relatively small diameter of these composite particles (similar to 110 nm) makes them promising candidates for use in tumor ablation or as photothermal drug-delivery agents.
机译:多孔二氧化硅涂覆的空心金-银纳米壳是利用以下程序成功合成的:在金属核转变之前生产多孔二氧化硅壳,从而增强了对双金属空心核的结构/组成的控制。通过改变反应时间和添加到多孔二氧化硅涂层银芯模板溶液中的精确量的金盐溶液,可以对复合纳米粒子进行定制,以显示易于调整的表面等离子体共振,该共振可以集中在可见光和近红外光谱上区域(类似于445-800 nm)。通过X射线光电子能谱,能量色散X射线能谱,扫描电子显微镜和透射电子显微镜的表征显示,合成方法提供了具有均匀组成,尺寸和形状的颗粒。通过吸收/消光光谱法评价光学性质。还研究了我们复合纳米颗粒的胶体溶液的稳定性随pH的变化,发现纳米壳在很宽的条件范围内(即pH 2-10)保持完整。这些复合颗粒的易变性,增强的稳定性和相对较小的直径(约110 nm)使其成为有望用于肿瘤消融或用作光热药物传递剂的候选物。

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