Edge modes and boundary impurities in the anisotropic Heisenberg spin chain
Pradip Kattel, Parameshwar R. Pasnoori, J. H. Pixley, and Natan Andrei

TL;DR
This paper investigates boundary phenomena in the anisotropic Heisenberg spin chain, revealing complex impurity phases, fractionalized edge modes, and the effects of integrable and non-integrable couplings using advanced numerical and analytical methods.
Contribution
It provides a detailed phase diagram of boundary impurities in the XXZ spin chain, highlighting new impurity phases and the role of fractionalized edge modes in a gapped antiferromagnetic system.
Findings
Identified Kondo and bound mode phases for integrable antiferromagnetic impurity couplings.
Discovered additional phases with mid-gap excitations in non-integrable couplings.
Showed boundary impurities can exhibit fractionalized edge modes and complex screening behavior.
Abstract
We present a comprehensive analysis of boundary phenomena in a spin- anisotropic Heisenberg chain (XXZ-) in the gapped antiferromagnetic phase, with a particular focus on the interplay between fractionalized spin- edge modes and a coupled spin- impurity at the edge. Employing a combination of Bethe Ansatz, exact diagonalization, and density matrix renormalization group (DMRG) methods, we explore the intricate phase diagram that emerges when the impurity is coupled either integrably or non-integrably to the chain. For integrable antiferromagnetic impurity couplings, we identify two distinct phases: the Kondo phase, where the impurity is screened by a multiparticle Kondo effect, and the antiferromagnetic bound mode phase, where an exponentially localized bound state screens the impurity in the ground state. When coupled…
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Taxonomy
TopicsQuantum many-body systems · Nonlinear Dynamics and Pattern Formation · Nonlinear Photonic Systems
