Dynamics of quantum systems
arXiv:quant-ph/0105068 · doi:10.1103/PhysRevE.64.036213
Abstract
A relation between the eigenvalues of an effective Hamilton operator and the poles of the matrix is derived which holds for isolated as well as for overlapping resonance states. The system may be a many-particle quantum system with two-body forces between the constituents or it may be a quantum billiard without any two-body forces. Avoided crossings of discrete states as well as of resonance states are traced back to the existence of branch points in the complex plane. Under certain conditions, these branch points appear as double poles of the matrix. They influence the dynamics of open as well as of closed quantum systems. The dynamics of the two-level system is studied in detail analytically as well as numerically.
21 pages 7 figures
References in corpus (1)
Cited by in corpus (50)
- Non-Hermitian Physics
- A review of progress in the physics of open quantum systems: theory and experiment
- Continuum Shell Model
- Effective non-Hermitian Hamiltonian and continuum shell model
- Super-Radiant Dynamics, Doorways, and Resonances in Nuclei and Other Open Mesoscopic Systems
- S-matrix theory for transmission through billiards in tight-binding approach
- Projective Hilbert space structures at exceptional points
- Complex coupled-cluster approach to an ab-initio description of open quantum systems
- Gamow shell model and realistic nucleon-nucleon interactions
- Resonances in open quantum systems
- Non-Hermitian Topological Phases: Principles and Prospects
- Regularities of Many-body Systems Interacting by a Two-body Random Ensemble
- Nearby states in non-Hermitian quantum systems
- Conductance of Open Quantum Billiards and Classical Trajectories
- Clustering of exceptional points and dynamical phase transitions
- Open quantum systems and Dicke superradiance
- PT-Symmetric Dimer of Coupled Nonlinear Oscillators
- Phase rigidity and avoided level crossings in the complex energy plane
- Influence of branch points in the complex plane on the transmission through double quantum dots
- Geometric phases and quantum phase transitions in open systems
- Non-Hermitian Hamiltonian approach to the microwave transmission through one- dimensional qubit chain
- On-demand coherent perfect absorption in complex scattering systems: time delay divergence and enhanced sensitivity to perturbations
- Selectively exciting quasi-normal modes in open disordered systems
- Direct Scattering Processes and Signatures of Chaos in Quantum Waveguides
- Exceptional points and double poles of the S matrix
- Width bifurcation and dynamical phase transitions in open quantum systems
- Effective Hamiltonian and unitarity of the S matrix
- Gain and loss in open quantum systems
- Pressure torque of torsional Alfvén modes acting on an ellipsoidal mantle
- Avoided level crossings in open quantum systems
- Dynamical stabilization and time in open quantum systems
- On the theory of cavities with point-like perturbations. Part I: General theory
- Non-Markovian stochastic description of quantum transport in photosynthetic systems
- Characterizing and Tuning Exceptional Points Using Newton Polygons
- Non-Hermitian approach for modeling of noise-assisted quantum electron transfer in photosynthetic complexes
- Noise-assisted quantum electron transfer in photosynthetic complexes
- Experimental observation of the avoided crossing of two -matrix resonance poles in an ultracold atom collider
- An optimum Hamiltonian for non-Hermitian quantum evolution and the complex Bloch sphere
- Exotic quantum holonomy induced by degeneracy hidden in complex parameter space
- Equilibrium states in open quantum systems
- Mollow triplet: pump probe single photon spectroscopy of artificial atoms
- Possible Role of Interference and Sink Effects in Nonphotochemical Quenching in Photosynthetic Complexes
- Spectroscopic properties of large open quantum-chaotic cavities with and without separated time scales
- Non-Hermitian description of a superconducting phase qubit measurement
- Observing S-Matrix Pole Flow in Resonance Interplay: Cold Collisions of Ultracold Atoms in a Miniature Laser-based Accelerator
- Critical points in two-channel quantum systems
- Non-Hermitian Adiabatic Quantum Optimization
- Exceptional points in open and PT symmetric systems
- Localization in chaotic systems with a single-channel opening
- Explicit Formulas for Estimating Trace of Reduced Density Matrix Powers via Single-Circuit Measurement Probabilities