Search arXiv⌕ Search

arXiv · 2605.06666

The Kubo-Thermalization Correspondence

Abstract

Quantum thermalization describes how interacting quantum systems relax toward thermal equilibrium, a central problem in modern physics. Yet most experimental information on many-body systems comes from short-time transition spectroscopy, typically interpreted within Kubo's linear-response framework. These perspectives - long-time equilibration versus short-time response - seem fundamentally disconnected. Here we establish an exact link between them: the Kubo-Thermalization correspondence, which connects long-time thermalized magnetization under weak driving to short-time linear-response spectra for a spin coupled to a thermal bath. The correspondence holds even when the steady state differs substantially from the initial state and when each regime is individually difficult to describe theoretically. We experimentally confirm the correspondence using effective spin-1/2 impurities realized with ultracold fermions in two internal states coupled to a Fermi sea. Our results provide a rare exact statement about quantum thermalization and offer a novel route to infer thermalization dynamics from equilibrium response measurements in strongly interacting quantum systems, independent of microscopic details of the system-bath coupling.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

Songtao Huang, Xingyu Li, Jianyi Chen, Alan Tsidilkovski, Gabriel G. T. Assumpção, Pengfei Zhang, Hui Zhai, Nir Navon. 2026-05-07. The Kubo-Thermalization Correspondence. https://arxiv.org/abs/2605.06666

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related papers

Moiré droplet of ultracold Bose gases in a twisted-bilayer optical lattice

We report the emergence of Moiré droplet in two-dimensional ultracold bosons subjected to a spin-dependent optical lattice, effctively realizing a twisted-bilayer configuration. We show that the droplet formation dramatically enhances the visibility of Moiré pattern in the density profile, even for exceptionally weak lattice potentials. The Moiré pattern can be enhanced similarly by increasing the lattice depth, which, however, also induces droplet diffusion characterized by a spreading density profile. Furthermore, we demonstrate a dynamical generation of Moiré pattern by dragging a small droplet through a moving lattice. At appropriate velocities, the droplet undergoes bifurcation and exhibits pronounced Moiré pattern within periodic time intervals. Our results establish the ultracold droplet as a compelling platform for simulating interacting Moiré physics, particularly the interplay between Moiré lattice and bound-state formation.

cond-mat.quant-gas↗

Interaction-induced Dimension Reduction for Bound States in Microwave-Shielded Ultracold Molecules

Microwave-shielded ultracold molecules provide a powerful platform for exploring quantum physics driven by long-range interactions. However, few-molecule bound states in fully three-dimensional (3D) environments remains largely unexplored.} Here we show that the tetratomic and hexatomic bound states of 3D ultracold molecules dressed by a single elliptic microwave field can be accurately described by effective one-dimensional (1D) models incorporating high-order angular fluctuations. We identify the validity region of such 1D description in the parameter plane of microwave field ellipticity and coupling strength. The hard-core character of 1D models enables a duality between bosonic and fermionic molecules in real and spectral space, while their momentum distributions remain distinct. Our results demonstrate an effective dimension reduction purely due to the intrinsic interaction anisotropy rather than any external confinement. Extending to large systems, our results suggest a self-bound single-molecule array as the ground state of both bosonic and fermionic molecular gases.

cond-mat.quant-gas↗

Observation of vector rogue waves in repulsive three-component atomic mixtures

Rogue waves are extreme evanescent nonlinear structures that are challenging to observe in atomic gases, as their emergence requires a dynamically unstable attractive environment. Here, we report the experimental observation of vector extensions of Peregrine solitons in highly particle-imbalanced, pairwise immiscible three-component repulsive Bose-Einstein condensates. The possibility of an effectively attractive character of the minority components is established by constructing a generalized reduction scheme for an imbalanced N -component setup with arbitrary interaction signs. These components are subject to intra- and inter-component modulation instability, which along with the presence of an attractive potential well induces the dynamical formation of highly reproducible vector rogue waves. Exploiting different Rb hyperfine states, it is possible to flexibly tune the effective interactions stimulating the realization of a plethora of vector rogue waves, including single and double Peregrine-like wave peaks. The experimental findings are in quantitative agreement with suitable three-dimensional mean-field simulations, while quasi-one-dimensional analysis of the non-polynomial Schroedinger model provides additional insights into the rogue wave characteristics.

cond-mat.quant-gas↗