Quantum scars and bulk coherence in a symmetry-protected topological phase
Jared Jeyaretnam, Jonas Richter, Arijeet Pal

TL;DR
This paper demonstrates the existence of quantum many-body scars in an interacting spin chain with symmetry-protected topological order, revealing their role in sustaining bulk coherence and nonthermal dynamics at finite energy densities.
Contribution
It uncovers quantum many-body scars in an SPT phase, linking bulk coherence with nonthermal eigenstates and long-lived dynamics beyond edge modes.
Findings
Existence of scarred eigenstates with volume-law and area-law entanglement.
Nonthermal expectation values of local operators in bulk scar states.
Long-lived nonthermal dynamics due to cluster confinement and sublattice detuning.
Abstract
Formation of quantum scars in many-body systems provides a novel mechanism for enhancing coherence of weakly entangled states. At the same time, coherence of edge modes in certain symmetry protected topological (SPT) phases can persist away from the ground state. In this work we show the existence of many-body scars and their implications on bulk coherence in such an SPT phase. To this end, we study the eigenstate properties and the dynamics of an interacting spin- chain with three-site "cluster" terms hosting a SPT phase. Focusing on the weakly interacting regime, we find that eigenstates with volume-law entanglement coexist with area-law entangled eigenstates throughout the spectrum. We show that a subset of the latter can be constructed by virtue of repeated cluster excitations on the even or odd sublattice of the chain, resulting in an…
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