Supercomputer model of finite-dimensional quantum electrodynamics applications
arXiv:2403.07042 · doi:10.1134/S1995080224603849
Abstract
A general scheme is given for supercomputer simulation of quantum processes, which are described by various modifications of finite-dimensional cavity quantum electrodynamics models, including Jaynes-Cummings-Hubbard model and Tavis-Cummings-Hubbard model. Conclusions and recommendations are illustrated using two examples: approximate model of hydrogen bonding and model of photon motion on a two-dimensional plane.
8 pages, 8 figures, 3 tables
References in corpus (6)
- Photon blockade induced Mott transitions and XY spin models in coupled cavity arrays
- Simulation of Quantum Computing on Classical Supercomputers
- Using a modified version of the Tavis-Cummings-Hubbard model to simulate the formation of neutral hydrogen molecule
- Comparing the effects of nuclear and electron spins on the formation of neutral hydrogen molecule
- Three principles of quantum computing
- Numerical analysis of the influence of initial and external conditions on the association of artificial atoms
Cited by in corpus (5)
- Entanglement and quantum discord in the cavity QED models
- Investigating entropic dynamics of multiqubit cavity QED system
- Simulating and investigating various dynamic aspects of the -related hydrogen bond model
- Quantum electrodynamic description of ionization of the neutral hydrogen molecule
- Studying the effect of phonon coherence and inflow on hydrogen bond formation in the cluster