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Quenching dynamics of a quantum XY spin-1/2 chain in a transverse field

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TLDR
In this article, the authors studied the quantum dynamics of a one-dimensional spin-$1/2$ anisotropic XY model in a transverse field when the transverse fields or the Anisotropic interaction is quenched at a slow but uniform rate.
Abstract
We study the quantum dynamics of a one-dimensional spin-$1/2$ anisotropic XY model in a transverse field when the transverse field or the anisotropic interaction is quenched at a slow but uniform rate. The two quenching schemes are called transverse and anisotropic quenching, respectively. Our emphasis in this paper is on the anisotropic quenching scheme, and we compare the results with those of the other scheme. In the process of anisotropic quenching, the system crosses all the quantum critical lines of the phase diagram where the relaxation time diverges. The evolution is nonadiabatic in the time interval when the parameters are close to their critical values, and is adiabatic otherwise. The density of defects produced due to nonadiabatic transitions is calculated by mapping the many-particle system to an equivalent Landau-Zener problem and is generally found to vary as $1/\sqrt{\tau}$, where \tau is the characteristic time scale of quenching, a scenario that supports the Kibble-Zurek mechanism. Interestingly, in the case of anisotropic quenching, there exists an additional nonadiabatic transition, in comparison to the transverse quenching case, with the corresponding probability peaking at an incommensurate value of the wave vector. In the special case in which the system passes through a multicritical point, the defect density is found to vary as $1/ \tau^{1/6}$. The von Neumann entropy of the final state is shown to maximize at a quenching rate around which the ordering of the final state changes from antiferromagnetic to ferromagnetic.

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Journal ArticleDOI

Colloquium: Nonequilibrium dynamics of closed interacting quantum systems

TL;DR: In this paper, the authors give an overview of recent theoretical and experimental progress in the area of nonequilibrium dynamics of isolated quantum systems, particularly focusing on quantum quenches: the temporal evolution following a sudden or slow change of the coupling constants of the system Hamiltonian.
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Colloquium: Quantum annealing and analog quantum computation

TL;DR: The recent success in quantum annealing, i.e., optimization of the cost or energy functions of complex systems utilizing quantum fluctuations, is reviewed in this paper, where the concept is introduced in successive steps through studying the mapping of such computationally hard problems to classical spin-glass problems.
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Dynamics of a quantum phase transition and relaxation to a steady state

TL;DR: In this paper, the authors review recent theoretical work on two closely related issues: excitation of an isolated quantum condensed matter system driven adiabatically across a continuous quantum phase transition or a gapless phase and apparent relaxation of an excited system after a sudden quench of a parameter in its Hamiltonian.
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Quantum discord and its allies: a review of recent progress.

TL;DR: In this paper, a review of concepts and methods associated with quantum discord and related topics is presented, as well as their possible connections with other aspects of quantum information and beyond, including quantum communication, quantum computation, many-body physics, and open quantum dynamics.
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Breakdown of the adiabatic limit in low-dimensional gapless systems

TL;DR: In this article, it was shown that for low-dimensional systems with a high-density of low-energy states, entropy is generally conserved and the process is adiabatic and therefore reversible.
References
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Book

Quantum mechanics: Non-relativistic theory,

TL;DR: The basic concepts of quantum mechanics Energy and momentum Schrodinger's equation Angular momentum Perturbation theory Spin The identity of particles The atom The theory of symmetry Polyatomic molecules Motion in a magnetic field Nuclear structure Elastic collisions Mathematical appendices.
Journal ArticleDOI

Quantum phase transitions

TL;DR: The universe itself is thought to have passed through several phase transitions as the high-temperature plasma formed by the big bang cooled to form the world as we know it today as mentioned in this paper.
Book

Quantum Ising Phases and Transitions in Transverse Ising Models

TL;DR: In this article, the Transverse Ising Chain (pure system) and Transverse ising System in Higher Dimensions (pure systems) in higher dimensions (pure Systems) are presented.
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