We compute the decay rates of emitters coupled to spheroidal nanoantennas made of gold, copper, silver, and aluminum. The spectral position of the localized surface plasmon-polariton resonance, the enhancement factors and the quantum efficiency are investigated as a function of the aspect ratio, background index and the metal composing the nanoantenna. While copper yields results similar to gold, silver and aluminum exhibit different performances. Our results show that with a careful choice of the parameters these nanoantennas can enhance emitters ranging from the UV to the near-IR spectrum
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We apply two- and three-dimensional numerical calculations to study optical nanoantennae made of two...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
Nanoantennas made of spheroidal metal nanoparticles are studied as a function of several parameters,...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
Linear arrays of noble metal nanoparticles, supporting Bragg plasmonic resonances, are proposed as o...
We numerically investigate and experimentally demonstrate a new route to controllably manipulate the...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We apply two- and three-dimensional numerical calculations to study optical nanoantennae made of two...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
Nanoantennas made of spheroidal metal nanoparticles are studied as a function of several parameters,...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
Linear arrays of noble metal nanoparticles, supporting Bragg plasmonic resonances, are proposed as o...
We numerically investigate and experimentally demonstrate a new route to controllably manipulate the...
We present a theoretical study of the spontaneous emission of an optical emitter close to a metal na...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...
We demonstrate a strong, 5-fold enhancement of the radiative decay rate from highly efficient fluore...