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基于光子纳米射流与表面等离子体共振协同效应的荧光增强

Fluorescence enhancement based on cooperative effects of a photonic nanojet and plasmon resonance.

作者信息

Zhang Weina, Lei Hongxiang

机构信息

School of Materials Science and Engineering, State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-Sen University, Guangzhou 510275, China.

出版信息

Nanoscale. 2020 Mar 28;12(12):6596-6602. doi: 10.1039/d0nr00675k. Epub 2020 Feb 19.

Abstract

Developing a universal and simple structure with an excellent fluorescence enhancement is a highly desirable goal for practical applications in optical detection and imaging. Herein, a hybrid structure composed of melamine-formaldehyde (MF) microspheres covering an Au nanorod (AuNR) film (MS/AuNR for short) is reported to enhance fluorescence, which is based on the cooperative effects of a photonic nanojet and plasmon resonance. Moreover, to obtain an excellent plasmonic property, an additional poly(methyl methacrylate) (PMMA) spacing layer with an optimal thickness of 8 nm is added to prevent the fluorescence from directly coming in contact with the AuNR film. Using the proposed hybrid structure and taking the quantum dots (QDs) as fluorescent materials, a maximum enhancement of fluorescence of up to 260 fold is measured. Besides, the hybrid structure is also applied in fluorescence imaging. Utilizing the fluorescence enhancement and pattern magnification effects of the hybrid structure, clear imaging of the 100 nm fluorescent particles is achieved. The above results have important academic value and application prospects in many fields such as weak fluorescence detection and nano-fluorescence imaging.

摘要

开发一种具有出色荧光增强效果的通用且简单的结构,对于光学检测和成像的实际应用而言是一个非常理想的目标。在此,报道了一种由覆盖金纳米棒(AuNR)薄膜的三聚氰胺 - 甲醛(MF)微球组成的混合结构(简称为MS/AuNR)用于增强荧光,其基于光子纳米射流和等离子体共振的协同效应。此外,为了获得优异的等离子体性能,添加了一层厚度为8 nm的最佳厚度的聚甲基丙烯酸甲酯(PMMA)间隔层,以防止荧光直接与AuNR薄膜接触。使用所提出的混合结构并以量子点(QD)作为荧光材料,测得荧光最大增强倍数高达260倍。此外,该混合结构还应用于荧光成像。利用混合结构的荧光增强和图案放大效应,实现了对100 nm荧光颗粒的清晰成像。上述结果在弱荧光检测和纳米荧光成像等许多领域具有重要的学术价值和应用前景。

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