A recent study [PRB 100, 075427 (2019)], finally, demonstrated the plasmon-analog of refractive index enhancement in metal nanostructures (MNSs), which has already been studied in atomic clouds for several decades. Here, we simply utilize this phenomenon for achieving continuously-tunable enhanced Cherenkov radiation (CR) in MNSs. Beyond enabling CR from slow-moving particles, or increasing its intensity, the phenomenon can be used in continuous-tuning of the velocity cutoff of particles contributing to CR. More influentially, this allows a continuously-tunable analysis of the contributing particles as if the data is collected from many different detectors, which enables data correction. The phenomenon can also be integrated into lattice MN...
With the flourishing development of nanophotonics, Cherenkov radiation pattern can be designed to ac...
Plasmonically active materials have the unique ability to use photons to drive a collective multi-el...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...
Cherenkov radiation provides a valuable way to identify high-energy particles in a wide momentum ran...
Since its first experimental observation by P. A. Cherenkov in 1934, Cherenkov radiation has attract...
Cherenkov detectors enable a valuable tool to identify high-energy particles. However, their sensiti...
Abstract: Cherenkov detectors enable a valuable tool to identify high-energy particles. However, the...
As one of leading technologies in detecting relativistic particles, Cherenkov radiation plays an ess...
The radiative processes associated with fluorophores and other radiating systems can be profoundly m...
The present article summarizes the results of a study of optical Cherenkov radiation (ChR) spectral ...
Recent advances in engineered material technologies (e.g., photonic crystals, metamaterials, plasmon...
We show the increase of the photoluminescence intensity ratio (PLR) and the emission rate enhancemen...
The radiative processes associated with fluorophores and other radiating systems can be profoundly m...
Polaritons in two-dimensional (2D) materials have shown their unique capabilities to concentrate lig...
We demonstrate experimentally that plasmon resonant nanoparticle chains exhibit a nanoscale localize...
With the flourishing development of nanophotonics, Cherenkov radiation pattern can be designed to ac...
Plasmonically active materials have the unique ability to use photons to drive a collective multi-el...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...
Cherenkov radiation provides a valuable way to identify high-energy particles in a wide momentum ran...
Since its first experimental observation by P. A. Cherenkov in 1934, Cherenkov radiation has attract...
Cherenkov detectors enable a valuable tool to identify high-energy particles. However, their sensiti...
Abstract: Cherenkov detectors enable a valuable tool to identify high-energy particles. However, the...
As one of leading technologies in detecting relativistic particles, Cherenkov radiation plays an ess...
The radiative processes associated with fluorophores and other radiating systems can be profoundly m...
The present article summarizes the results of a study of optical Cherenkov radiation (ChR) spectral ...
Recent advances in engineered material technologies (e.g., photonic crystals, metamaterials, plasmon...
We show the increase of the photoluminescence intensity ratio (PLR) and the emission rate enhancemen...
The radiative processes associated with fluorophores and other radiating systems can be profoundly m...
Polaritons in two-dimensional (2D) materials have shown their unique capabilities to concentrate lig...
We demonstrate experimentally that plasmon resonant nanoparticle chains exhibit a nanoscale localize...
With the flourishing development of nanophotonics, Cherenkov radiation pattern can be designed to ac...
Plasmonically active materials have the unique ability to use photons to drive a collective multi-el...
Plasmons are collective oscillations of free electrons in a metal. At optical frequencies plasmons e...