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利用等离子体双共振金纳米棒实现上转换发光中的同时激发和发射增强。

Simultaneous excitation and emission enhancements in upconversion luminescence using plasmonic double-resonant gold nanorods.

作者信息

Liu Xin, Yuan Lei Dang

机构信息

Department of Applied Physics, The Hong Kong Polytechnic University, Hong Kong, China.

Key Lab of Advanced Transducers and Intelligent Control System of Ministry of Education and Shanxi Province, College of Physics and Optoelectronics, Taiyuan University of Technology, Taiyuan 030024, China.

出版信息

Sci Rep. 2015 Oct 15;5:15235. doi: 10.1038/srep15235.

Abstract

The geometry and dimension of a gold nanorod (GNR) are optimally designed to enhance the fluorescence intensity of a lanthanide-doped upconversion nanocrystal placed in close proximity to the GNR. A systematic study of the electromagnetic interaction between the upconversion emitter of three energy levels and the GNR shows that the enhancement effect arising from localized electric field-induced absorption can be balanced by the negative effect of electronic transition from an intermediate state to the ground state of the emitter. The dependence of fluorescence enhancement on the emitter-GNR separation is investigated, and the results demonstrate a maximum enhancement factor of 120 folds and 160 folds at emission wavelengths 650 and 540 nm, respectively. This is achieved at the emitter-GNR separation ranging from 5 to 15 nm, depending on the initial quantum efficiency of the emitter. The modified upconversion luminescence behavior by adjusting the aspect ratio of the GNR and the relative position of the emitter indicates the dominate role of excitation process in the total fluorescence enhancement. These findings are of great importance for rationally designing composite nanostructures of metal nanoparticles and upconversion nanocrystals with maximized plasmonic enhancement for bioimaging and sensing applications.

摘要

金纳米棒(GNR)的几何形状和尺寸经过优化设计,以增强放置在其附近的镧系元素掺杂上转换纳米晶体的荧光强度。对三能级上转换发射体与GNR之间电磁相互作用的系统研究表明,由局域电场诱导吸收产生的增强效应可被发射体从中间态到基态的电子跃迁的负面影响所平衡。研究了荧光增强对发射体 - GNR间距的依赖性,结果表明在发射波长650和540 nm处,最大增强因子分别为120倍和160倍。这是在发射体 - GNR间距为5至15 nm的范围内实现的,具体取决于发射体的初始量子效率。通过调整GNR的纵横比和发射体的相对位置来改变上转换发光行为,表明激发过程在总荧光增强中起主导作用。这些发现对于合理设计具有最大化等离子体增强的金属纳米颗粒和上转换纳米晶体的复合纳米结构用于生物成像和传感应用具有重要意义。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9ec/4606728/d99bfd5eab9f/srep15235-f1.jpg

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