Particle-wave dichotomy in quantum Monte Carlo: unlocking the quantum correlations
arXiv:1609.03298 · doi:10.1364/JOSAB.34.001817
Abstract
Here, a dichotomy of particles and waves is employed in a quantum Monte Carlo calculation of interacting electrons. Through the creation and propagation of concurrent stochastic ensembles of walkers in physical space and in Hilbert space one can correctly predict the ground state and the real-time evolution of a single electron interacting with larger quantum system. It is shown that such walker ensembles can be constructed straightforwardly through a stochastic sampling (windowing) applied to the mean-field approximation. Our calculations reveal that the ground state and the real-time evolution of the probability distributions and the decoherence due to the Coulomb interaction in presence of strong ultrashort laser pulse can be accounted for correctly by calculating the density matrix of the electron, without referencing to the quantum many-body state of the whole system.
References in corpus (5)
- Computational complexity and fundamental limitations to fermionic quantum Monte Carlo simulations
- Exponential complexity and ontological theories of quantum mechanics
- First-principles quantum dynamics in interacting Bose gases I: The positive P representation
- Correlated non-perturbative electron dynamics with quantum trajectories
- Double-slit interference with charged particles. Density matrices and decoherence from time-dependent quantum Monte Carlo
Cited by in corpus (8)
- Entangled Quantum Dynamics of Many-Body Systems using Bohmian Trajectories
- Spatial entanglement of fermions in one-dimensional quantum dots
- Phase-locking mechanism in non-sequential double ionization
- Spatial non-locality in confined quantum systems: a liaison with quantum correlations
- Local entanglement of electrons in 1D hydrogen molecule
- Effects of spatial nonlocality versus nonlocal causality for bound electrons in external fields
- Entanglement islands in 1D and 2D lattices with defects
- Statistics of Marginal Wavefunctions as a Real-Space Diagnostic of Quantum Entanglement