Impact of a charged neighboring particle on Forster resonance energy transfer (FRET)

被引:9
|
作者
Abeywickrama, Champi [1 ]
Premaratne, Malin [1 ]
Gunapala, Sarath D. [2 ]
Andrews, David L. [3 ]
机构
[1] Monash Univ, Dept Elect & Comp Syst Engn, Adv Comp & Simulat Lab AxL, Clayton, Vic 3800, Australia
[2] CALTECH, Jet Prop Lab, 4800 Oak Grove Dr, Pasadena, CA 91109 USA
[3] Univ East Anglia, Sch Chem, Norwich Res Pk, Norwich NR4 7TJ, Norfolk, England
关键词
metal nanoparticle; Green's tensor; Forster resonance energy transfer; effective dielectric function; QUANTUM-DOT; VIRTUAL PHOTONS; FLUORESCENCE; BIOSENSORS; LIGHT; PHOTOSYNTHESIS; ABSORPTION; GRAPHENE; SPASER; CANCER;
D O I
10.1088/1361-648X/ab577a
中图分类号
O469 [凝聚态物理学];
学科分类号
070205 ;
摘要
Forster resonance energy transfer (FRET) is an important physical phenomenon which demands precise control over the FRET rate for its wide range of applications. Hence, enhancing the FRET rate using different techniques has been extensively studied in the literature. Research indicates that introducing additional particles to a system consisting of a donor-acceptor pair can change the behaviour of FRET in the system. One such technique is to utilize the collective oscillations of the surface electrons of a neighboring electrically-neutral metal nanoparticle (MNP). However, the perceived changes on the FRET rate between the donor and the acceptor, when the MNP carries excess electrical charges are yet unknown. In this paper, we study these changes by introducing a charged MNP, in the proximity of an excited donor and a ground state acceptor. We deploy the classical Green's tensor to express the FRET rate in the system. We consider an effective dielectric response for the MNP, which accounts for the extraneous surface charge effects. We analyze the electrical potential at the acceptor position due to the changed dipole moment of the donor molecule as a result of the electric field induced at the donor position, and obtain the FRET rate of the system. This model considers arbitrary locations and orientations of the two molecular dipole moments with regard to the position of the spherical MNP. We present the enhancement of the FRET rate, predominantly caused by both the surface plasmon excitations and the extraneous surface electrical charges carried by the neighboring MNP. We obtain the results by varying the separation distance between the molecules and the MNP, the transition frequency of the donor-acceptor pair and the size of the metallic sphere. Specifically, we demonstrate that a donor-acceptor pair placed in the vicinity of an electrically-charged Silver MNP exhibits a remarkable improvement in the FRET rate. Furthermore, the aggregate FRET enhancement is determined by other characteristics such as the location of the donor, transition frequency, separation distances and the radius of the MNP. In essence, these findings reveal an approach to realize the enhanced FRET rate in a larger span in a more controlled manner that is desirable in many FRET-based applications including spectroscopic measurements.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Forster Resonance Energy Transfer (FRET) between Heterogeneously Distributed Probes: Application to Lipid Nanodomains and Pores
    Sachl, Radek
    Johansson, Lennart B. -A.
    Hof, Martin
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2012, 13 (12) : 16141 - 16156
  • [32] Forster resonance energy transfer (FRET) between CdSe quantum dots and ABA phosphorus(V) corroles
    Kubba, Ritika
    Singh, Mrityunjay Kumar
    Jyoti, Omprakash
    Yadav, Omprakash
    Kumar, Anil
    SPECTROCHIMICA ACTA PART A-MOLECULAR AND BIOMOLECULAR SPECTROSCOPY, 2023, 291
  • [33] A Forster resonance energy transfer (FRET) approach for enhancing fluorescence contrast in phase-separated membranes
    Ramirez, Daniel M. Carter
    Ding, Jason
    Guan, Jack
    Vobornik, Dusan
    Carnini, Anna
    Ogilvie, William W.
    Jakubek, Zygmunt J.
    Johnston, Linda J.
    CANADIAN JOURNAL OF CHEMISTRY, 2011, 89 (03) : 423 - 432
  • [34] Application of Forster resonance energy transfer (FRET) for the functional characterization of OATP2B1
    Hagen, P.
    Jedlitschky, G.
    Grube, M.
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2018, 391 : S72 - S72
  • [35] The fluorescence quantum yield parameter in Forster resonance energy transfer (FRET)-Meaning, misperception, and molecular design
    Lindsey, Jonathan S.
    Taniguchi, Masahiko
    Bocian, David F.
    Holten, Dewey
    CHEMICAL PHYSICS REVIEWS, 2021, 2 (01):
  • [36] Forster resonance energy transfer: Role of diffusion of fluorophore orientation and separation in observed shifts of FRET efficiency
    Wallace, Bram
    Atzberger, Paul J.
    PLOS ONE, 2017, 12 (05):
  • [37] Quantitative FRET (Forster Resonance Energy Transfer) Analysis for SENP1 Protease Kinetics Determination
    Liu, Yan
    Liao, Jiayu
    JOVE-JOURNAL OF VISUALIZED EXPERIMENTS, 2013, (72):
  • [38] Probing the Ion Binding Site in a DNA Holliday Junction Using Forster Resonance Energy Transfer (FRET)
    Litke, Jacob L.
    Li, Yan
    Nocka, Laura M.
    Mukerji, Ishita
    INTERNATIONAL JOURNAL OF MOLECULAR SCIENCES, 2016, 17 (03):
  • [39] Enhancing the organic solar cell efficiency by combining plasmonic and Forster Resonance Energy Transfer (FRET) effects
    Jang, Yu Jin
    Kawaguchi, Daisuke
    Yamaguchi, Shuhei
    Lee, Sunghee
    Lim, Ju Won
    Kim, Heejun
    Tanaka, Keiji
    Kim, Dong Ha
    JOURNAL OF POWER SOURCES, 2019, 438
  • [40] Forster resonance energy transfer photoacoustic microscopy
    Wang, Yu
    Wang, Lihong V.
    PHOTONS PLUS ULTRASOUND: IMAGING AND SENSING 2013, 2013, 8581