Interface dynamics in the two-dimensional quantum Ising model
Federico Balducci, Andrea Gambassi, Alessio Lerose, Antonello, Scardicchio, Carlo Vanoni

TL;DR
This paper investigates the dynamics of interfaces in the 2D quantum Ising model, revealing ergodicity breaking due to Stark localization, with analytical and numerical analysis of interface evolution and entanglement.
Contribution
It provides a detailed analysis of interface dynamics, mapping to integrable fermionic chains, and demonstrates non-ergodicity persists beyond the infinite-coupling limit.
Findings
Interface dynamics exhibit ergodicity breaking due to Stark localization.
The evolution of interfaces can be mapped to an integrable fermionic chain.
Decay timescale for large regions scales as e^{c L ln L}.
Abstract
In a recent paper [Phys. Rev. Lett. 129, 120601] we have shown that the dynamics of interfaces, in the symmetry-broken phase of the two-dimensional ferromagnetic quantum Ising model, displays a robust form of ergodicity breaking. In this paper, we elaborate more on the issue. First, we discuss two classes of initial states on the square lattice, the dynamics of which is driven by complementary terms in the effective Hamiltonian and may be solved exactly: (a) strips of consecutive neighbouring spins aligned in the opposite direction of the surrounding spins, and (b) a large class of initial states, characterized by the presence of a well-defined "smooth" interface separating two infinitely extended regions with oppositely aligned spins. The evolution of the latter states can be mapped onto that of an effective one-dimensional fermionic chain, which is integrable in the infinite-coupling…
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Taxonomy
TopicsQuantum many-body systems · Theoretical and Computational Physics · Opinion Dynamics and Social Influence
