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A Photonic System for Generating Unconditional Polarization-Entangled Photons Based on Multiple Quantum Interference
Published on: September 5, 2019
Quantum statistical ensemble for emissive correlated systems.
Alexey M Shakirov1,2, Yulia E Shchadilova1, Alexey N Rubtsov1,2
1Russian Quantum Center, Novaya Street 100A, 143025 Skolkovo, Moscow Region, Russia.
This study reveals that emissive quantum systems, even without detailed balance, achieve a Boltzmann distribution in their steady state. This occurs across different particle sectors, each with a unique temperature.
Area of Science:
- Quantum mechanics
- Statistical mechanics
- Many-body systems
Background:
- Relaxation dynamics in complex quantum systems are crucial for statistical mechanics.
- The canonical ensemble and Boltzmann distribution typically rely on detailed balance for steady states.
- Open quantum systems interacting with an environment are fundamental to understanding thermalization.
Purpose of the Study:
- To investigate the steady-state properties of an open correlated quantum system in contact with a vacuum reservoir.
- To determine the nature of the stationary probability distribution in such an 'emissive' system.
- To explore the emergence of Boltzmann-like distributions in the absence of detailed balance.
Main Methods:
- Modeling an open correlated quantum system interacting with a vacuum reservoir.
- Analyzing the relaxation dynamics towards the steady state.
- Investigating transition rates between system eigenstates.
- Examining the stationary probability distribution across different N-particle sectors.
Main Results:
- The steady state exhibits a Boltzmann-like probability distribution over stable eigenstates within each N-particle sector.
- This Boltzmann distribution emerges despite the absence of detailed balance.
- The system's quantum statistical ensemble is characterized by sector-dependent temperatures, differing from the Gibbs ensemble.
- Transition rates show an exponential dependence on transition energy.
Conclusions:
- The Boltzmann distribution can arise in emissive quantum systems even without detailed balance.
- Sector-specific temperatures characterize the steady state of these systems.
- The findings suggest a generic property for a broad class of emissive quantum many-body systems.
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