生物系统内核金纳米壳的光学检测

M. D’Acunto, S. Dinarelli, A. Cricenti, M. Luce
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引用次数: 2

摘要

摘要金属纳米壳具有薄金层的电介质核,由于其在金属-电介质核界面附近的局部场增强所表现出的独特的光学、电学和磁性能,引起了人们新的关注。这些纳米壳具有强的、高度可调的局部等离子体共振,其频率取决于纳米壳的形状和核心材料。这些独特的特性在生物传感、光通信和医学上都有应用。在本文中,我们开发了一种基于扫描近光学显微镜的理论,数值和实验方法来识别小鼠细胞内的纳米壳。利用许多生物系统的近红外透明窗口特性,即生物系统在750 ~ 1100 nm之间的低光吸收系数,我们能够在h9c2小鼠细胞内鉴定出直径为100 ~ 150 nm的钛酸钡-金纳米壳。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Optical Detection of core-gold nanoshells inside biosystems
Abstract Metal nanoshells having a dielectric core with a thin gold layer are generating new interest due to the unique optical, electric and magnetic properties exhibited by the local field enhancement near the metal – dielectric core interface. These nanoshells possess strong, highly tunable local plasmon resonances with frequencies dependent upon the nanoshell shape and core material. These unique characteristics have applications in biosensing, optical communication and medicine. In this paper, we developed a theoretical, numerical and experimental approach based on a scanning near optical microscope to identify nanoshells inside mouse cells. Taking advantage of the characteristic near-infrared transparency window of many biological systems, i.e. the low light absorption coefficient of biological systems between 750−1100 nm, we were able to identify a 100−150 nm diameter barium titanate-gold nanoshell inside the h9c2 mouse cells.
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