Exact volume-law entangled eigenstates in a large class of spin models
APA
(2025). Exact volume-law entangled eigenstates in a large class of spin models. SciVideos. https://youtu.be/uZUrjZxhPnI
MLA
Exact volume-law entangled eigenstates in a large class of spin models. SciVideos, Apr. 22, 2025, https://youtu.be/uZUrjZxhPnI
BibTex
@misc{ scivideos_ICTS:31639, doi = {}, url = {https://youtu.be/uZUrjZxhPnI}, author = {}, keywords = {}, language = {en}, title = {Exact volume-law entangled eigenstates in a large class of spin models}, publisher = {}, year = {2025}, month = {apr}, note = {ICTS:31639 see, \url{https://scivideos.org/icts-tifr/31639}} }
Abstract
Exact solutions for excited states in non-integrable quantum Hamiltonians have revealed novel dynamical phenomena that can occur in quantum many-body systems. This work proposes a method to analytically construct a specific set of volume-law-entangled exact excited eigenstates in a large class of spin Hamiltonians. In particular, we show that all spin chains that satisfy a simple set of conditions host exact volume-law eigenstates in the middle of their spectra. Examples of physically relevant spin chains of this type include the transverse-field Ising model, PXP model, spin-S XY model, and spin-S Kitaev chain. Although these eigenstates are highly atypical in their structure, they are thermal with respect to local observables. Our framework also unifies many recent constructions of volume-law entangled eigenstates in the literature. Finally, we show that a similar construction also generalizes to spin models on graphs in arbitrary dimensions.