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Dissipation engineering of fermionic long-range order beyond Lindblad

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arxiv 2507.00553 v2 pith:DWG4GZ5M submitted 2025-07-01 cond-mat.supr-con quant-ph

Dissipation engineering of fermionic long-range order beyond Lindblad

classification cond-mat.supr-con quant-ph
keywords lindbladlong-rangemodelorderbeyondengineeringfermionicmechanism
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We investigate the possibility of engineering dissipatively long-range order that is robust against heating in strongly interacting fermionic systems, relevant for atoms in cavity QED. It was previously shown [Tindall et al. Phys.Rev.Lett. 123, 030603 (2019)] that it is possible to stabilize long-range order in a Hubbard model by exploiting a dissipative mechanism in the Lindblad limit, this latter being valid for spectrally unstructured baths. Here, we first show that this mechanism still holds when including additional spin-exchange interactions in the model, that is for the tUJ model. Moreover, by means of a Redfield approach that goes beyond the Lindblad case, we show how the stability of the engineered state depends crucially on properties of the bath spectral density and discuss the feasibility of those properties in an experiment.

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    A model-agnostic randomized dissipative cooling protocol drives generic strongly correlated fermionic systems to their low-energy manifold using local ancilla couplings with random energy splittings.