Collective non-Hermitian skin effect: Point-gap topology and the
doublon-holon excitations in non-reciprocal many-body systems
- URL: http://arxiv.org/abs/2309.07894v1
- Date: Thu, 14 Sep 2023 17:43:16 GMT
- Title: Collective non-Hermitian skin effect: Point-gap topology and the
doublon-holon excitations in non-reciprocal many-body systems
- Authors: Beom Hyun Kim and Jae-Ho Han and Moon Jip Park
- Abstract summary: Non-Hermitian skin effect, macroscopic collapse of bulk states to the boundary, has been extensively studied in various experimental platforms.
Previous studies have shown that the Pauli exclusion principle suppresses the skin effect.
We present a compelling counterexample by demonstrating the presence of the skin effect in doublon-holon excitations.
- Score: 1.565361244756411
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Open quantum systems provide a plethora of exotic topological phases of
matter that has no Hermitian counterpart. Non-Hermitian skin effect,
macroscopic collapse of bulk states to the boundary, has been extensively
studied in various experimental platforms. However, it remains an open question
whether such topological phases persist in the presence of many-body
interactions. Notably, previous studies have shown that the Pauli exclusion
principle suppresses the skin effect. In this study, we present a compelling
counterexample by demonstrating the presence of the skin effect in
doublon-holon excitations. While the ground state of the spin-half
Hatano-Nelson model shows no skin effect, the doublon-holon pairs, as its
collective excitations, display the many-body skin effect even in strong
coupling limit. We rigorously establish the robustness of this effect by
revealing a bulk-boundary correspondence mediated by the point gap topology
within the many-body energy spectrum. Our findings underscore the existence of
non-Hermitian topological phases in collective excitations of many-body
interacting systems.
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