Few-mode Field Quantization for Multiple Emitters
arXiv:2112.10581 · doi:10.1515/nanoph-2021-0795
Abstract
The control of the interaction between several quantum emitters using nanophotonic structures holds great promise for quantum technology applications. However, the theoretical description of such processes for complex nanostructures is a highly demanding task as the electromagnetic (EM) modes are in principle described by a high-dimensional continuum. We here introduce an approach that permits a quantized description of the full EM field through a "minimal" number of discrete modes. This extends the previous work in [Medina et al., Phys. Rev. Lett. 126, 093601 (2021)] to the case of an arbitrary number of emitters with arbitrary orientations, without any restrictions on the emitter level structure or dipole operators. We illustrate the power of our approach for a model system formed by three emitters placed in different positions within a metallodielectric photonic structure consisting of a metallic dimer embedded in a dielectric nanosphere. The low computational demand of this method makes it suitable for studying dynamics for a wide range of parameters. We show that excitation transfer between the emitters is highly sensitive to the properties of the hybrid photonic-plasmonic modes, demonstrating the potential of such structures for achieving control over emitter interactions.
References in corpus (16)
- How to face the loss in plasmonics and metamaterials
- Entanglement of two qubits mediated by one-dimensional plasmonic waveguides
- Subwavelength vacuum lattices and atom-atom interactions in photonic crystals
- Input-output theory of cavities in the ultra-strong coupling regime: the case of a time-independent vacuum Rabi frequency
- Non-perturbative treatment of non-Markovian dynamics of open quantum systems
- Numerically exact open quantum systems simulations for arbitrary environments using automated compression of environments
- Few-mode Field Quantization of Arbitrary Electromagnetic Spectral Densities
- Macroscopic QED for quantum nanophotonics: Emitter-centered modes as a minimal basis for multi-emitter problems
- Generalized theory of pseudomodes for exact descriptions of non-Markovian quantum processes
- Strong coupling between localized surface plasmons and molecules by coupled cluster theory
- Quasinormal modes and Purcell factors of coupled loss-gain resonators and index-modulated ring resonators near exceptional points
- Cumulant expansion for the treatment of light-matter interactions in arbitrary material structures
- Gauge-Independent Emission Spectra and Quantum Correlations in the Ultrastrong Coupling Regime of Open System Cavity-QED
- Certifying multi-mode light-matter interaction in lossy resonators
- Quantized quasinormal mode theory of coupled lossy and amplifying resonators
- Convergence guarantees for discrete mode approximations to non-Markovian quantum baths
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- A theoretical perspective on molecular polaritonics
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- Non-Hermitian Pseudomodes for Strongly Coupled Open Quantum Systems: Unravelings, Correlations and Thermodynamics
- Ab initio calculations of quantum light-matter interactions in general electromagnetic environments
- Non-Hermitian molecular dynamics simulations of exciton-polaritons in lossy cavities
- Gauge-invariant theory of truncated quantum light-matter interactions in arbitrary media
- Effective single mode methodology for strongly coupled multimode molecular-plasmon nanosystems
- Taming the Bloch-Redfield equation: Recovering an accurate Lindblad equation for general open quantum systems
- A mixed perturbative-nonperturbative treatment for strong light-matter interactions
- Microscopic theory of exciton-polariton model involving multiple molecules: Macroscopic quantum electrodynamics formulation and essence of direct intermolecular interactions
- Identifying the origin of delayed electroluminescence in a polariton organic light-emitting diode
- Collective photon emission in solid state environments: Concatenating non-markovian and markovian dynamics
- Spatially resolved photon statistics of general nanophotonic systems
- Theory of Molecular Emission Power Spectra. III. Non-Hermitian Interactions in Multichromophoric Systems Coupled with Polaritons
- MQED-QD: An Open-Source Package for Quantum Dynamics Simulation in Complex Dielectric Environments
- Subtleties in the pseudomodes formalism
- Position-Resolved Resonance Quantization for Lossy Cavities