Quantum Chaos of the Bose-Fermi Kondo model at the intermediate temperature
arXiv:2103.11929 · doi:10.1103/PhysRevB.104.085139
Abstract
We study the quantum chaos in the Bose-Fermi Kondo model in which the impurity spin interacts with conduction electrons and a bosonic bath at the intermediate temperature in the large limit. The out-of-time-ordered correlator is calculated based on the Bethe-Salpeter equation and the Lyapunov exponent is extracted. Our calculation shows that the Lyapunov exponent monotonically increases as the Kondo coupling increases, and it can reach an order of as approaches the point. Furthermore, we also demonstrate that decreases monotonously as the impurity and bosonic bath coupling increases, which is contrary to the general expectation that the most chaotic property occurs at the quantum critical point with the non-Fermi liquid nature.
8 pages, 8 figures
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