Shapiro Dmitriy S
Dukhov Research Institute of Automatics (VNIIA), Moscow, Russia, 127055.
Department of Physics, National Research University Higher School of Economics, Moscow, Russia, 101000.
Sci Rep. 2021 Apr 15;11(1):8328. doi: 10.1038/s41598-021-87536-w.
Under nonequilibrium conditions, quantum optical systems reveal unusual properties that might be distinct from those in condensed matter. The fundamental reason is that photonic eigenstates can have arbitrary occupation numbers, whereas in electronic systems these are limited by the Pauli principle. Here, we address the steady-state transport of pseudothermal photons between two waveguides connected through a cavity with Bose-Hubbard interaction between photons. One of the waveguides is subjected to a broadband incoherent pumping. We predict a continuous transition between the regimes of Lorentzian and Gaussian chaotic light emitted by the cavity. The rich variety of nonequilibrium transport regimes is revealed by the zero-frequency noise. There are three limiting cases, in which the noise-current relation is characterized by a power-law, [Formula: see text]. The Lorentzian light corresponds to Breit-Wigner-like transmission and [Formula: see text]. The Gaussian regime corresponds to many-body transport with the shot noise ([Formula: see text]) at large currents; at low currents, however, we find an unconventional exponent [Formula: see text] indicating a nontrivial interplay between multi-photon transitions and incoherent pumping. The nonperturbative solution for photon dephasing is obtained in the framework of the Keldysh field theory and Caldeira-Leggett effective action. These findings might be relevant for experiments on photon blockade in superconducting qubits, thermal states transfer, and photon statistics probing.
在非平衡条件下,量子光学系统展现出可能与凝聚态物质中不同的异常特性。根本原因在于光子本征态可以具有任意占据数,而在电子系统中这些受到泡利原理的限制。在此,我们研究通过具有光子间玻色 - 哈伯德相互作用的腔连接的两个波导之间的伪热光子稳态输运。其中一个波导受到宽带非相干泵浦。我们预测腔发射的洛伦兹型和高斯型混沌光区域之间的连续转变。零频噪声揭示了丰富多样的非平衡输运区域。存在三种极限情况,其中噪声 - 电流关系由幂律[公式:见原文]表征。洛伦兹型光对应类似布赖特 - 维格纳的透射和[公式:见原文]。高斯区域对应于大电流时具有散粒噪声([公式:见原文])的多体输运;然而,在低电流时,我们发现一个非传统指数[公式:见原文],表明多光子跃迁和非相干泵浦之间存在非平凡的相互作用。在凯尔迪什场论和卡尔德雷拉 - 莱格特有效作用的框架内获得了光子退相的非微扰解。这些发现可能与超导量子比特中的光子阻塞、热态转移和光子统计探测实验相关。