Probing quantum many-body correlations by universal ramping dynamics
arXiv:2109.00273 · doi:10.1016/j.scib.2022.12.005
Abstract
Ramping a physical parameter is one of the most common experimental protocols in studying a quantum system, and ramping dynamics has been widely used in preparing a quantum state and probing physical properties. Here, we present a novel method of probing quantum many-body correlation by ramping dynamics. We ramp a Hamiltonian parameter to the same target value from different initial values and with different velocities, and we show that the first-order correction on the finite ramping velocity is universal and path-independent, revealing a novel quantum many-body correlation function of the equilibrium phases at the target values. We term this method as the non-adiabatic linear response since this is the leading order correction beyond the adiabatic limit. We demonstrate this method experimentally by studying the Bose-Hubbard model with ultracold atoms in three-dimensional optical lattices. Unlike the conventional linear response that reveals whether the quasi-particle dispersion of a quantum phase is gapped or gapless, this probe is more sensitive to whether the quasi-particle lifetime is long enough such that the quantum phase possesses a well-defined quasi-particle description. In the Bose-Hubbard model, this non-adiabatic linear response is significant in the quantum critical regime where well-defined quasi-particles are absent. And in contrast, this response is vanishingly small in both superfluid and Mott insulators which possess well-defined quasi-particles. Because our proposal uses the most common experimental protocol, we envision that our method can find broad applications in probing various quantum systems.
7 pages for main text. Science Bulletin (2022)
References in corpus (11)
- Electronic structure of quantum materials studied by angle-resolved photoemission spectroscopy
- Using photoemission spectroscopy to probe a strongly interacting Fermi gas
- Universal adiabatic dynamics across a quantum critical point
- The `Higgs' Amplitude Mode at the Two-Dimensional Superfluid-Mott Insulator Transition
- Observation of pseudogap behavior in a strongly interacting Fermi gas
- Breakdown of the adiabatic limit in low dimensional gapless systems
- Supplementary Information to the paper ``Breakdown of the adiabatic limit in low dimensional gapless systems''
- Emergence of coherence and the dynamics of quantum phase transitions
- Exploring correlated 1D Bose gases from the superfluid to the Mott-insulator state by inelastic light scattering
- Measuring the one-particle excitations of ultracold fermionic atoms by stimulated Raman spectroscopy
- Observation of many-body quantum phase transitions beyond the Kibble-Zurek mechanism
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