Absence of spin superradiance in resonatorless magnets
arXiv:cond-mat/0505024 · doi:10.1002/lapl.200410170
Abstract
A spin system is considered with a Hamiltonian typical of molecular magnets, having dipole-dipole interactions and a single-site magnetic anisotropy. In addition, spin interactions through the common radiation field are included. A fully quantum-mechanical derivation of the collective radiation rate is presented. An effective narrowing of the dipole-dipole attenuation, due to high spin polarization is taken into account. The influence of the radiation rate on spin dynamics is carefully analysed. It is shown that this influence is completely negligible. No noticeable collective effects, such as superradiance, can appear in molecular magnets, being caused by electromagnetic spin radiation. Spin superradiance can arise in molecular magnets only when these are coupled to a resonant electric circuit, as has been suggested earlier by one of the authors in Laser Phys. {\bf 12}, 1089 (2002).
Latex file, 14 pages, 5 figures
References in corpus (6)
- Superradiance from crystals of molecular nanomagnets
- Superradiation from Crystals of High-Spin Molecular Nanomagnets
- Processing Information by Punctuated Spin Superradiance
- Principle of Pattern Selection for Nonequilibrium Phenomena
- Turbulent Photon Filamentation in Resonant Media
- Probabilistic Approach to Pattern Selection
Cited by in corpus (11)
- Dipolar and spinor bosonic systems
- Dynamics of quantum dot superradiance
- Coherent spin relaxation in molecular magnets
- Coherent spin radiation by magnetic nanomolecules and nanoclusters
- Microwave emission from a crystal of molecular magnets -- The role of a resonant cavity
- Coherent dynamics of radiating atomic systems in pseudospin representation
- Quantum correlated light pulses from sequential superradiance of a condensate
- Collective spin dynamics in magnetic nanomaterials
- Method of dynamic resonance tuning in spintronics of nanosystems
- Coherent spin dynamics of nanomolecules and magnetic nanoclusters
- Spin superradiance by magnetic nanomolecules and nanoclusters