Mapping the Domany-Kinzel automaton to isoTNS yields a 2D quantum state with algebraic correlations whose continuous parent Hamiltonian exhibits a degenerate manifold containing an entanglement-pattern transition at the directed-percolation critical point.
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4 Pith papers cite this work. Polarity classification is still indexing.
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2026 4verdicts
UNVERDICTED 4representative citing papers
First experimental signatures of asymptotic quantum many-body scars on a trapped-ion simulator show thermalization times increasing with system size up to 20 qubits.
Asymptotic quantum many-body scars in SU(N) Hubbard chains are realized explicitly as gapless magnons of an embedded SU(N) ferromagnetic Heisenberg parent Hamiltonian.
Interference-protected subspaces in chaotic spin chains host broad nonthermal phenomena at high energy densities, explained by a quantitative leakage theory that extends weak ergodicity breaking beyond homogeneous scars.
citing papers explorer
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Entanglement Pattern Transition of Quantum States from Directed Percolation
Mapping the Domany-Kinzel automaton to isoTNS yields a 2D quantum state with algebraic correlations whose continuous parent Hamiltonian exhibits a degenerate manifold containing an entanglement-pattern transition at the directed-percolation critical point.
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Dynamical signatures of conventional and asymptotic quantum many-body scars on a trapped ion simulator
First experimental signatures of asymptotic quantum many-body scars on a trapped-ion simulator show thermalization times increasing with system size up to 20 qubits.
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Construction of asymptotic quantum many-body scar states in the SU($N$) Hubbard model
Asymptotic quantum many-body scars in SU(N) Hubbard chains are realized explicitly as gapless magnons of an embedded SU(N) ferromagnetic Heisenberg parent Hamiltonian.
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Coherent dynamics in chaotic spin chains via interference-protected subspaces
Interference-protected subspaces in chaotic spin chains host broad nonthermal phenomena at high energy densities, explained by a quantitative leakage theory that extends weak ergodicity breaking beyond homogeneous scars.