Eigenstate structure in many-body bosonic systems: Analysis using random
matrices and $q$-Hermite polynomials
- URL: http://arxiv.org/abs/2111.08820v1
- Date: Tue, 16 Nov 2021 22:48:06 GMT
- Title: Eigenstate structure in many-body bosonic systems: Analysis using random
matrices and $q$-Hermite polynomials
- Authors: Priyanka Rao, Manan Vyas, N. D. Chavda
- Abstract summary: We analyze the structure of eigenstates in many-body bosonic systems by modeling the Hamiltonian of these complex systems.
We compare transport efficiency in many-body bosonic systems using BEGOE in absence and presence of centrosymmetry.
- Score: 2.2752986092900533
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We analyze the structure of eigenstates in many-body bosonic systems by
modeling the Hamiltonian of these complex systems using Bosonic Embedded
Gaussian Orthogonal Ensembles (BEGOE) defined by a mean-field plus $k$-body
random interactions. The quantities employed are the number of principal
components (NPC), the localization length ($l_H$) and the entropy production
$S(t)$. The numerical results are compared with the analytical formulas
obtained using random matrices which are based on bivariate $q$-Hermite
polynomials for local density of states $F_k(E|q)$ and the bivariate
$q$-Hermite polynomial form for bivariate eigenvalue density
$\rho_{biv:q}(E,E_k)$ that are valid in the strong interaction domain. We also
compare transport efficiency in many-body bosonic systems using BEGOE in
absence and presence of centrosymmetry. It is seen that the centrosymmetry
enhances quantum efficiency.
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