4.6 Article

Surface plasmon coupling effects on the forster resonance energy transfer from quantum dot into rhodamine 6G

Journal

NANOTECHNOLOGY
Volume 32, Issue 29, Pages -

Publisher

IOP Publishing Ltd
DOI: 10.1088/1361-6528/abf775

Keywords

Fö rster resonance energy transfer; surface plasmon coupling; quantum dot; Ag nanoparticle; rhodamine 6G

Funding

  1. Ministry of Science and Technology, Taiwan, The Republic of China [MOST 109-2221-E-002-194, MOST 108-2221-E-002-160, MOST 107-2923-M-002-005-MY3]
  2. US Air Force Office of Scientific Research [AOARD-17IOA087]

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The study reveals that surface plasmon coupling reduces FRET efficiency and creates competition. While R6G emission efficiency can be enhanced through SP coupling, the enhancement decreases when R6G is linked onto QD and then self-assembled onto Ag NP, especially when the number of R6G molecules is high.
Rhodamine 6G (R6G) molecules linked CdZnSeS/ZnS green-emitting quantum dots (QDs) are self-assembled onto Ag nanoparticles (NPs) for studying the surface plasmon (SP) coupling effect on the Forster resonance energy transfer (FRET) process from QD into R6G. SP coupling can enhance the emission efficiency of QD such that FRET has to compete with QD emission for transferring energy into R6G. It is found that FRET efficiency is reduced under the SP coupling condition. Although R6G emission efficiency can also be enhanced through SP coupling when it is directly linked onto Ag NP, the enhancement decreases when R6G is linked onto QD and then the QD-R6G complex is self-assembled onto Ag NP. In particular, R6G emission efficiency can be reduced through SP coupling when the number of R6G molecules linked onto a QD is high. A rate-equation model is built for resembling the measured photoluminescence decay profiles and providing us with more detailed explanations for the observed FRET and SP coupling behaviors.

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