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A quantum Newton's cradle

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TLDR
In this paper, the authors show that a homogeneous 1D Bose gas with point-like collisional interactions is integrable, and that it is possible to construct a system with many degrees of freedom that does not reach thermal equilibrium even after thousands of collisions.
Abstract
It is a fundamental assumption of statistical mechanics that a closed system with many degrees of freedom ergodically samples all equal energy points in phase space. To understand the limits of this assumption, it is important to find and study systems that are not ergodic, and thus do not reach thermal equilibrium. A few complex systems have been proposed that are expected not to thermalize because their dynamics are integrable. Some nearly integrable systems of many particles have been studied numerically, and shown not to ergodically sample phase space. However, there has been no experimental demonstration of such a system with many degrees of freedom that does not approach thermal equilibrium. Here we report the preparation of out-of-equilibrium arrays of trapped one-dimensional (1D) Bose gases, each containing from 40 to 250 87Rb atoms, which do not noticeably equilibrate even after thousands of collisions. Our results are probably explainable by the well-known fact that a homogeneous 1D Bose gas with point-like collisional interactions is integrable. Until now, however, the time evolution of out-of-equilibrium 1D Bose gases has been a theoretically unsettled issue, as practical factors such as harmonic trapping and imperfectly point-like interactions may compromise integrability. The absence of damping in 1D Bose gases may lead to potential applications in force sensing and atom interferometry.

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References
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Journal ArticleDOI

Phase dynamics of discrete breathers periodically tunneling in weakly coupled nonlinear chains

TL;DR: In this paper, the phase-coherent dynamics of discrete breathers (intrinsic localized modes) in a system of two weakly coupled nonlinear chains and its comparison with periodic tunneling of quantum particles in a double-well potential were discussed.
Journal ArticleDOI

Quantum physics: equilibrium on hold.

TL;DR: There is a quantum equivalent of Newton's cradle, created in a one-dimensional Bose gas, which may find application in force sensing and atom interferometry.
Journal ArticleDOI

Anomalous non-equilibrium electron transport in one-dimensional quantum nano wire at half-filling: time dependent density renormalization group study

TL;DR: In this article, the authors study non-equilibrium properties of one-dimensional Hubbard model by the density-matrix renormalization-group method and demonstrate stability of Doublon, which characterized by double occupation on a site due to the integrability of the model.
Book ChapterDOI

Studying Time-Dependent Quantum Phenomena with the Density-Matrix Renormalization Group

TL;DR: In this article, the authors describe adaptive t-DMRG algorithms, which tailor the reduced Hilbert space to one particular time step and which are therefore the most efficient algorithms for the majority of applications.
Journal ArticleDOI

Second Josephson excitations beyond mean field as a toy model for thermal pressure: exact quantum dynamics and the quantum phase model

M. P. Strzys, +1 more
- 15 May 2012 - 
TL;DR: In this article, it was shown that high-energy Bogoliubov quasiparticles tend to accumulate in one pair of sites, while the actual particles preferentially occupy the opposite pair.