Emergence of Fermi's Golden Rule in the Probing of a Quantum Many-Body System
- URL: http://arxiv.org/abs/2502.14867v1
- Date: Thu, 20 Feb 2025 18:59:57 GMT
- Title: Emergence of Fermi's Golden Rule in the Probing of a Quantum Many-Body System
- Authors: Jianyi Chen, Songtao Huang, Yunpeng Ji, Grant L. Schumacher, Alan Tsidilkovski, Alexander Schuckert, Gabriel G. T. Assumpção, Nir Navon,
- Abstract summary: We observe the emergence and breakdown of Fermi's Golden Rule (FGR) in a quantum many-body system.
Our results provide a blueprint for the applicability of linear response theory to the spectroscopy of quantum many-body systems.
- Score: 35.40737096974622
- License:
- Abstract: Fermi's Golden Rule (FGR) is one of the most impactful formulas in quantum mechanics, providing a link between easy-to-measure observables - such as transition rates - and fundamental microscopic properties - such as density of states or spectral functions. Its validity relies on three key assumptions: the existence of a continuum, an appropriate time window, and a weak coupling. Understanding the regime of validity of FGR is critical for the proper interpretation of most spectroscopic experiments. While the assumptions underlying FGR are straightforward to analyze in simple models, their applicability is significantly more complex in quantum many-body systems. Here, we observe the emergence and breakdown of FGR, using a strongly interacting homogeneous spin-$1/2$ Fermi gas coupled to a radio-frequency (rf) field. Measuring the transition probability into an outcoupled internal state, we map the system's dynamical response diagram versus the rf-pulse duration $t$ and Rabi frequency $\Omega_0$. For weak drives, we identify three regimes: an early-time regime where the transition probability takes off as $t^2$, an intermediate-time FGR regime, and a long-time non-perturbative regime. Beyond a threshold Rabi frequency, Rabi oscillations appear. Our results provide a blueprint for the applicability of linear response theory to the spectroscopy of quantum many-body systems.
Related papers
- Real-time dynamics of false vacuum decay [49.1574468325115]
We investigate false vacuum decay of a relativistic scalar field in the metastable minimum of an asymmetric double-well potential.
We employ the non-perturbative framework of the two-particle irreducible (2PI) quantum effective action at next-to-leading order in a large-N expansion.
arXiv Detail & Related papers (2023-10-06T12:44:48Z) - Unitarity breaking in self-averaging spectral form factors [0.0]
WeExploit the fidelity-based interpretation of the spectral form factor (SFF)
We show that using filters, disorder and time averages of the SFF involve unitarity breaking.
We show that frequency and energy filters make the SFF self-averaging at long times.
arXiv Detail & Related papers (2023-07-10T18:00:04Z) - Time-resolved Hanbury Brown-Twiss interferometry of on-chip biphoton
frequency combs using Vernier phase modulation [0.0]
Biphoton frequency combs (BFCs) are promising quantum sources for large-scale and high-dimensional quantum information and networking systems.
Measurement of the temporal auto-correlation function of the unheralded signal or idler photons comprising the BFC is a key tool for characterizing their spectral purity.
We propose a scheme to circumvent this challenge through electro-optic phase modulation.
arXiv Detail & Related papers (2022-10-11T17:08:22Z) - Spin Current Density Functional Theory of the Quantum Spin-Hall Phase [59.50307752165016]
We apply the spin current density functional theory to the quantum spin-Hall phase.
We show that the explicit account of spin currents in the electron-electron potential of the SCDFT is key to the appearance of a Dirac cone.
arXiv Detail & Related papers (2022-08-29T20:46:26Z) - Formation of robust bound states of interacting microwave photons [148.37607455646454]
One of the hallmarks of interacting systems is the formation of multi-particle bound states.
We develop a high fidelity parameterizable fSim gate that implements the periodic quantum circuit of the spin-1/2 XXZ model.
By placing microwave photons in adjacent qubit sites, we study the propagation of these excitations and observe their bound nature for up to 5 photons.
arXiv Detail & Related papers (2022-06-10T17:52:29Z) - Mean-field Floquet theory for a three-level cold-atom laser [0.0]
We present a theoretical description for a lasing scheme for atoms with three internal levels in a $V$-configuration.
The work provides simple methods for understanding complex physics that occur in cold atom lasers with narrow line transitions.
arXiv Detail & Related papers (2022-05-09T17:17:42Z) - Toward Witnessing Molecular Exciton Entanglement from Spectroscopy [0.0]
Entanglement is a defining feature of quantum mechanics that can be a resource in engineered and natural systems.
This work lays some groundwork and inspires measurement of multipartite entanglement of molecular excitons with ultrafast pump-probe experiments.
arXiv Detail & Related papers (2021-06-29T01:58:32Z) - Visualizing spinon Fermi surfaces with time-dependent spectroscopy [62.997667081978825]
We propose applying time-dependent photo-emission spectroscopy, an established tool in solid state systems, in cold atom quantum simulators.
We show in exact diagonalization simulations of the one-dimensional $t-J$ model that the spinons start to populate previously unoccupied states in an effective band structure.
The dependence of the spectral function on the time after the pump pulse reveals collective interactions among spinons.
arXiv Detail & Related papers (2021-05-27T18:00:02Z) - Finite-component dynamical quantum phase transitions [0.0]
We show two types of dynamical quantum phase transitions (DQPTs) in a quantum Rabi model.
One refers to distinct phases according to long-time averaged order parameters, the other is focused on the non-analytical behavior emerging in the rate function of the Loschmidt echo.
We find the critical times at which the rate function becomes non-analytical, showing its associated critical exponent as well as the corrections introduced by a finite frequency ratio.
arXiv Detail & Related papers (2020-08-31T17:31:17Z) - Probing eigenstate thermalization in quantum simulators via
fluctuation-dissipation relations [77.34726150561087]
The eigenstate thermalization hypothesis (ETH) offers a universal mechanism for the approach to equilibrium of closed quantum many-body systems.
Here, we propose a theory-independent route to probe the full ETH in quantum simulators by observing the emergence of fluctuation-dissipation relations.
Our work presents a theory-independent way to characterize thermalization in quantum simulators and paves the way to quantum simulate condensed matter pump-probe experiments.
arXiv Detail & Related papers (2020-07-20T18:00:02Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.