View a PDF of the paper titled Sturdy Quantum Mpemba Impact from Precise Sluggish-Mode Choice in Constrained Rydberg Chains, by Mingdi Xu and 5 different authors
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Summary:CStrong quantum Mpemba acceleration requires suppressing the slowest seen Liouvillian rest channel, however a sturdy many-body mechanism for implementing such suppression stays difficult. We establish such a mechanism in regionally dephased constrained Rydberg chains by way of actual slow-mode choice. For constrained single-spin-flip Hamiltonians, native dephasing turns the Hamiltonian itself into an actual left Liouvillian eigenmode, $mathcal L^dagger(H)=-gamma H$. A finite-temperature reference state generically overlaps with this $H$-like gradual mode, whereas translationally invariant states with $mathrm{Tr}(Hrho_0)=0$ take away it and are confined to the $Q=0$ operator sector. When the subsequent seen $Q=0$ mode decays quicker, these chosen states exhibit a robust quantum Mpemba impact. We show this mechanism within the PXP chain for a zero-energy scar eigenstate, the all-zero product state, and a translation-invariant $Z_2$ cat state, and present that it persists within the $(2,3)$ mannequin and the longer-range blockade household. Our outcomes establish Liouvillian mode visibility, relatively than particular scar wave features, because the organizing precept for anomalously quick rest in constrained open quantum methods.
Submission historical past
From: Lei Pan [view email] [v1]
Mon, 20 Jul 2026 14:12:46 UTC (3,866 KB)
[v2]
Tue, 4 Aug 2026 14:31:04 UTC (368 KB)
![[2607.17975] Sturdy Quantum Mpemba Impact from Precise Sluggish-Mode Choice in Constrained Rydberg Chains [2607.17975] Sturdy Quantum Mpemba Impact from Precise Sluggish-Mode Choice in Constrained Rydberg Chains](http://arxiv.org/static/browse/0.3.4/images/arxiv-logo-fb.png)
