A canonical approach to quantum fluctuations

Fuente: arXiv
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Main Authors: Ruhl, Joanna, Dunjko, Vanja, Olshanii, Maxim
Format: Preprint
Published: 2025
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author Ruhl, Joanna
Dunjko, Vanja
Olshanii, Maxim
author_facet Ruhl, Joanna
Dunjko, Vanja
Olshanii, Maxim
contents We present a canonical formalism for computing quantum fluctuations of certain discrete degrees of freedom in systems governed by integrable partial differential equations with known Hamiltonian structure, provided these models are classical-field approximations of underlying many-body quantum systems. We then apply the formalism to both the 2-soliton and 3-soliton breather solutions of the nonlinear Schrödinger equation, assuming the breathers are created from an initial elementary soliton by quenching the coupling constant. In particular, we compute the immediate post-quench quantum fluctuations in the positions, velocities, norms, and phases of the constituent solitons. For each case, we consider both the white-noise and correlated-noise models for the fluctuation vacuum state. Unlike previous treatments of the problem, our method allows for analytic solutions. Additionally, in the correlated-noise case, we consider the particle-number-conserving (also called $U(1)$-symmetry-conserving) Bogoliubov modes, i.e., modes with the proper correction to preserve the total particle number. We find that in most (but not all) cases, these corrections do not change the final result.
format Preprint
id arxiv_https___arxiv_org_abs_2506_21709
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A canonical approach to quantum fluctuations
Ruhl, Joanna
Dunjko, Vanja
Olshanii, Maxim
Quantum Gases
We present a canonical formalism for computing quantum fluctuations of certain discrete degrees of freedom in systems governed by integrable partial differential equations with known Hamiltonian structure, provided these models are classical-field approximations of underlying many-body quantum systems. We then apply the formalism to both the 2-soliton and 3-soliton breather solutions of the nonlinear Schrödinger equation, assuming the breathers are created from an initial elementary soliton by quenching the coupling constant. In particular, we compute the immediate post-quench quantum fluctuations in the positions, velocities, norms, and phases of the constituent solitons. For each case, we consider both the white-noise and correlated-noise models for the fluctuation vacuum state. Unlike previous treatments of the problem, our method allows for analytic solutions. Additionally, in the correlated-noise case, we consider the particle-number-conserving (also called $U(1)$-symmetry-conserving) Bogoliubov modes, i.e., modes with the proper correction to preserve the total particle number. We find that in most (but not all) cases, these corrections do not change the final result.
title A canonical approach to quantum fluctuations
topic Quantum Gases
url https://arxiv.org/abs/2506.21709