The Journal of Physical Chemistry C · 2023 · 11 citations · 37 references
The development of a long-range and efficient Förster resonance energy transfer (FRET) process is essential for its application in key enabling optoelectronic and sensing technologies. Via controlling the delocalization of the donor's electric field and Purcell enhancements, we experimentally demonstrate long-range and high-efficiency Förster resonance energy transfer using a plasmonic nanogap formed between a silver nanoparticle and an extended silver film. Our measurements show that the FRET range can be extended to over 200 nm while keeping the FRET efficiency over 0.38, achieving an efficiency enhancement factor of ∼10<sup>8</sup> with respect to a homogeneous environment. Reducing Purcell enhancements by removing the extended silver film increases the FRET efficiency to 0.55, at the expense of the FRET rate. We support our experimental findings with numerical calculations based on three-dimensional finite difference time-domain calculations and treat the donor and acceptor as classical dipoles. Our enhanced FRET range and efficiency structures provide a powerful strategy to develop novel optoelectronic devices and long-range FRET imaging and sensing systems.
37
Optical Constants of the Noble Metals
P. B. Johnson, R. W. Christy · Physical review. B, Solid state · 1972 · 19.5K citations
Large spontaneous emission enhancement in plasmonic nanocavities
Kasey J. Russell, Tsung-Li Liu, Shanying Cui et al. · Nature Photonics · 2012 · 447 citations · Full text
Control of Radiative Processes Using Tunable Plasmonic Nanopatch Antennas
Alec Rose, Thang B. Hoang, Felicia McGuire et al. · Nano Letters · 2014 · 230 citations
Engineering, Metamaterials, Plasmon-enhanced Photovoltaics +20