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Entanglement Phase Transition Induced by the Non-Hermitian Skin Effect

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TLDR
In this paper , the skin effect is shown to give rise to a macroscopic flow of particles and suppress the entanglement propagation and thermalization in non-Hermitian topological phases.
Abstract
Recent years have seen remarkable development in open quantum systems effectively described by non-Hermitian Hamiltonians. A unique feature of non-Hermitian topological systems is the skin effect, anomalous localization of an extensive number of eigenstates driven by nonreciprocal dissipation. Despite its significance for non-Hermitian topological phases, the relevance of the skin effect to quantum entanglement and critical phenomena has remained unclear. Here, we find that the skin effect induces a nonequilibrium quantum phase transition in the entanglement dynamics. We show that the skin effect gives rise to a macroscopic flow of particles and suppresses the entanglement propagation and thermalization, leading to the area law of the entanglement entropy in the nonequilibrium steady state. Moreover, we reveal an entanglement phase transition induced by the competition between the unitary dynamics and the skin effect even without disorder or interactions. This entanglement phase transition accompanies nonequilibrium quantum criticality characterized by a nonunitary conformal field theory whose effective central charge is extremely sensitive to the boundary conditions. We also demonstrate that it originates from an exceptional point of the non-Hermitian Hamiltonian and the concomitant scale invariance of the skin modes localized according to the power law. Furthermore, we show that the skin effect leads to the purification and the reduction of von Neumann entropy even in Markovian open quantum systems described by the Lindblad master equation. Our work opens a way to control the entanglement growth and establishes a fundamental understanding of phase transitions and critical phenomena in open quantum systems far from thermal equilibrium.

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Citations
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Non-Hermitian squeezed polarons

TL;DR: In this paper , the authors propose a solution to solve the problem of the problem: this paper ] of "uniformity" and "uncertainty" of the solution.
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Volume-to-area law entanglement transition in a non-Hermitian free fermionic chain

TL;DR: In this article , the authors consider the dynamics of the non-Hermitian Su-Schrieffer-Heeger model arising as the no-click limit of a continuously monitored free fermion chain where particles and holes are measured on two sublattices.
Journal ArticleDOI

Topological non-Hermitian skin effect

TL;DR: In this article , a review of recent developments in the non-Hermitian skin effect (NHSE), particularly on its rich interplay with topology, is presented, with a pedagogical introduction on the modified bulk-boundary correspondence.

Dimensional transmutation from non-Hermiticity

Hui Jiang, +1 more
TL;DR: In this article , it was shown that non-Hermitian couplings do not merely distort the Brillouin zone (BZ), but can in fact alter its effective dimensionality.
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Universal competitive spectral scaling from the critical non-Hermitian skin effect

TL;DR: In this paper , the authors rigorously developed the notion of a size-dependent generalized Brillouin zone (GBZ) in a general multi-component non-Hermitian skin effect (cNHSE) model ansatz, and found that the GBZ exhibits a universal scaling behavior.
References
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Book

The Theory of Open Quantum Systems

TL;DR: Probability in classical and quantum physics has been studied in this article, where classical probability theory and stochastic processes have been applied to quantum optical systems and non-Markovian dynamics in physical systems.
Journal ArticleDOI

Real Spectra in Non-Hermitian Hamiltonians Having PT Symmetry

TL;DR: The condition of self-adjointness as discussed by the authors ensures that the eigenvalues of a Hamiltonian are real and bounded below, replacing this condition by the weaker condition of $\mathrm{PT}$ symmetry, one obtains new infinite classes of complex Hamiltonians whose spectra are also real and positive.
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Disordered electronic systems

TL;DR: In this article, a review of the progress made in the last several years in understanding the properties of disordered electronic systems is presented, focusing on the metal-to-insulator transition and problems associated with the insulator.
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Observation of parity–time symmetry in optics

TL;DR: In this paper, the authors report the first observation of the behaviour of a PT optical coupled system that judiciously involves a complex index potential, and observe both spontaneous PT symmetry breaking and power oscillations violating left-right symmetry.
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Entanglement entropy and quantum field theory

TL;DR: In this article, a systematic study of entanglement entropy in relativistic quantum field theory is carried out, where the von Neumann entropy is defined as the reduced density matrix ρA of a subsystem A of a 1+1-dimensional critical system, whose continuum limit is a conformal field theory with central charge c, and the results are verified for a free massive field theory.