High Finesse Cavity with Anapole-Assisted Resonant Subwavelength
Particle Mirror
- URL: http://arxiv.org/abs/2104.11397v1
- Date: Fri, 23 Apr 2021 03:18:08 GMT
- Title: High Finesse Cavity with Anapole-Assisted Resonant Subwavelength
Particle Mirror
- Authors: Z. Xi, H.P. Urbach
- Abstract summary: We propose a high finesse cavity with one mirror made of a subwavelength resonant particle as a platform to enhance this interaction.
High-quality eigenmode solutions are obtained for such a highly non-paraxial cavity with a very high field concentration at the particle.
Light-matter interactions at the subwavelength scale can be greatly enhanced due to the small size of the particle and the high finesse of the cavity.
- Score: 0.0
- License: http://creativecommons.org/licenses/by-nc-nd/4.0/
- Abstract: Strong light interaction with a subwavelength object has been a long pursuing
goal with difficulties mainly arising from the diffraction limit. We propose a
high finesse cavity with one mirror made of a subwavelength resonant particle
as a platform to enhance this interaction. High-quality eigenmode solutions are
obtained for such a highly non-paraxial cavity with a very high field
concentration at the particle. The eigenmode solutions interact with the small
particle in a more general way than by the electric dipole approximation. With
the help of the anapole excitation in the dipole term, the particle is designed
to scatter like a pure magnetic quadrupole, and in this way, it has anear-unity
reflectivity when used as a mirror for the strongly focused field of the
eigenmode. Light-matter interactions at the subwavelength scale can be greatly
enhanced due to the small size of the particle and the high finesse of the
cavity, which can be potentially interesting for applications in nano optics,
quantum optomechanics, nonlinear optics, and subwavelength metrology beyond the
electric dipole approximation.
Related papers
- Long-range interactions in Weyl dense atomic arrays protected from dissipation and disorder [41.94295877935867]
Long-range interactions are a key resource in many quantum phenomena and technologies.
We show how to design the polaritonic bands of these atomic metamaterials to feature a pair of frequency-isolated Weyl points.
These Weyl excitations can thus mediate interactions that are simultaneously long-range, due to their gapless nature; robust, due to the topological protection of Weyl points; and decoherence-free, due to their subradiant character.
arXiv Detail & Related papers (2024-06-18T20:15:16Z) - Ultrafast and highly collimated radially polarized photons from a colloidal quantum dot in a hybrid nanoantenna at room-temperature [33.013211742281996]
A room-temperature device generates highly directional radially polarized photons at very high rates.
The emitted photons can have a very high degree of radial polarization (>93%) based on a quantitative metric.
Our study contributes to the fundamental understanding of radial polarization in nanostructured devices and paves the way for implementation of such systems in practical applications.
arXiv Detail & Related papers (2024-03-11T08:58:17Z) - Plasmon mediated coherent population oscillations in molecular
aggregates [2.2723634099641004]
coherent coupling of quantum emitters to vacuum fluctuations of the light field offers opportunities for manipulating the optical and transport properties of nanomaterials.
Here, we use ultrafast two-dimensional electronic spectroscopy to probe the quantum dynamics of J-aggregate excitons collectively coupled to the spatially structured plasmonic fields of a gold nanoslit array.
arXiv Detail & Related papers (2023-07-27T08:57:46Z) - A high-flux source system for matter-wave interferometry exploiting
tunable interactions [33.92525320044496]
Atom interferometers allow determining inertial effects to high accuracy.
Here we report on a high-flux source of ultra-cold atoms with free expansion rates near the Heisenberg limit directly upon release from the trap.
arXiv Detail & Related papers (2023-07-13T14:10:53Z) - Levitated Optomechanics with Meta-Atoms [0.0]
We introduce additional control in levitated optomechanics by trapping a meta-atom supporting Mie resonances.
We show that optical levitation and center-of-mass ground-state cooling of silicon nanoparticles in vacuum is not only experimentally feasible but it offers enhanced performance.
arXiv Detail & Related papers (2022-11-15T15:50:51Z) - Single atom in a superoscillatory optical trap [0.0]
We report trapping of single ultracold atom in an optical trap that can be continuously tuned from a standard Airy focus to a subwavelength hotspot smaller than the usual Abbe's diffraction limit.
We argue that superoscillatory trapping and continuous potential tuning offer not only a way to generate compact and tenable ensembles of trapped atoms for quantum simulators but will also be useful in single molecule quantum chemistry.
arXiv Detail & Related papers (2022-11-01T04:54:33Z) - Magnetic-field-induced cavity protection for intersubband polaritons [52.77024349608834]
We analyse the effect of a strong perpendicular magnetic field on an intersubband transition in a disordered doped quantum well strongly coupled to an optical cavity.
The magnetic field changes the lineshape of the intersubband optical transition due to the roughness of the interface of the quantum well from a Lorentzian to a Gaussian one.
arXiv Detail & Related papers (2022-10-14T18:00:03Z) - Ponderomotive squeezing of light by a levitated nanoparticle in free
space [0.0]
A mechanically compliant element can be set into motion by the interaction with light.
This light-driven motion can give rise to ponderomotive correlations in the electromagnetic field.
cavities are often employed to enhance these correlations up to the point where they generate quantum squeezing of light.
arXiv Detail & Related papers (2022-02-18T07:57:36Z) - Nanoscale continuous quantum light sources based on driven dipole
emitter arrays [0.0]
Two-level emitters at distances smaller that the transition wavelength collectively scatter, absorb and emit photons.
This should allow to implement nanoscale non-classical light sources via weak coherent illumination.
arXiv Detail & Related papers (2021-03-03T14:09:37Z) - Position-controlled quantum emitters with reproducible emission
wavelength in hexagonal boron nitride [45.39825093917047]
Single photon emitters (SPEs) in low-dimensional layered materials have recently gained a large interest owing to the auspicious perspectives of integration and extreme miniaturization.
Here, we evidence SPEs in high purity synthetic hexagonal boron nitride (hBN) that can be activated by an electron beam at chosen locations.
Our findings constitute an essential step towards the realization of top-down integrated devices based on identical quantum emitters in 2D materials.
arXiv Detail & Related papers (2020-11-24T17:20:19Z) - Waveguide Quantum Electrodynamics with Giant Superconducting Artificial
Atoms [40.456646238780195]
We employ an alternative architecture that realizes a giant atom by coupling small atoms to a waveguide at multiple, but well separated, discrete locations.
Our realization of giant atoms enables tunable atom-waveguide couplings with large on-off ratios and a coupling spectrum that can be engineered by device design.
arXiv Detail & Related papers (2019-12-27T16:45:59Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.