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铁电液晶-金属-银纳米颗粒复合材料中的纳米颗粒表面能量转移(NSET):掺杂剂浓度对NSET参数的影响。

Nanoparticle surface energy transfer (NSET) in ferroelectric liquid crystal-metallic-silver nanoparticle composites: Effect of dopant concentration on NSET parameters.

作者信息

Vimal T, Pujar G H, Agrahari K, Inamdar Sanjeev R, Manohar R

机构信息

Liquid Crystal Research Lab, Physics Department, University of Lucknow, Lucknow 226007, India.

Department of Physics, GM Institute of Technology, Davangere 577 006, Karnataka, India.

出版信息

Phys Rev E. 2021 Feb;103(2-1):022708. doi: 10.1103/PhysRevE.103.022708.

Abstract

In the recent past, the resonance energy transfer studies using metallic nanoparticles has become a matter of quintessence in modern technology, which considerably extends its applications in probing specific biological and chemical processes. In the present study, metallic-silver nanoparticles of 2-4 nm (diameter) capped with hexanethiol ligand are developed and dispersed in ferroelectric liquid crystal (FLC). The morphology of nanoparticles was characterized using HR-TEM and SEM techniques. Furthermore, a systematic study of energy transfer between the host FLC material (as donors) and metallic-silver nanoparticles (as acceptors) has been explored employing steady state and time resolved fluorescence spectroscopic techniques. The nanoparticle based surface energy transfer (NSET) parameters viz., transfer efficiency, transfer rate, and proximity distance between donor and acceptor, have been determined for NSET couples (FLC material-metallic-silver nanoparticle) composites. It is observed that various NSET parameters and quenching efficiency follow a linear dependence on the concentration of metallic-silver nanoparticles in host FLC material. The nonradiative energy transfer and superquenching effect were analyzed with the help of Stern-Volmer plots. The impact of present study about superquenching effect of the silver nanoparticles can be used for sensing applications that require high degree sensitivity.

摘要

近年来,使用金属纳米颗粒的共振能量转移研究已成为现代技术中的核心问题,这极大地扩展了其在探测特定生物和化学过程中的应用。在本研究中,制备了直径为2 - 4 nm、用己硫醇配体包覆的金属银纳米颗粒,并将其分散在铁电液晶(FLC)中。使用高分辨率透射电子显微镜(HR - TEM)和扫描电子显微镜(SEM)技术对纳米颗粒的形态进行了表征。此外,采用稳态和时间分辨荧光光谱技术,对主体FLC材料(作为供体)和金属银纳米颗粒(作为受体)之间的能量转移进行了系统研究。对于基于纳米颗粒的表面能量转移(NSET)对(FLC材料 - 金属银纳米颗粒)复合材料,已确定了NSET参数,即转移效率、转移速率以及供体和受体之间的接近距离。观察到各种NSET参数和猝灭效率与主体FLC材料中金属银纳米颗粒的浓度呈线性依赖关系。借助Stern - Volmer图分析了非辐射能量转移和超猝灭效应。本研究中关于银纳米颗粒超猝灭效应的影响可用于需要高灵敏度的传感应用。

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