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Quasi-superradiant soliton state of matter in quantum metamaterials

机译:Quasi-Superradiant Soliton在量子超材料中的物质状态

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Strong interaction of a system of quantum emitters (e.g., two-level atoms) with electromagnetic field induces specific correlations in the system accompanied by a drastic increase of emitted radiation (superradiation or superfluorescence). Despite the fact that since its prediction this phenomenon was subject to a vigorous experimental and theoretical research, there remain open question, in particular, concerning the possibility of a first order phase transition to the superradiant state from the vacuum state. In systems of natural and charge-based artificial atom this transition is prohibited by "no-go" theorems. Here we demonstrate numerically and confirm analytically a similar transition in a one-dimensional quantum metamaterial a chain of artificial atoms (qubits) strongly interacting with classical electromagnetic fields in a transmission line. The system switches from vacuum state to the quasi-superradiant (QS) phase with one or several magnetic solitons and finite average occupation of qubit excited states along the transmission line. A quantum metamaterial in the QS phase circumvents the "no-go" restrictions by considerably decreasing its total energy relative to the vacuum state by exciting nonlinear electromagnetic solitons.
机译:用电磁场的量子发射器(例如,两级原子)系统的强相互作用在系统中引起特定相关性,伴随着发射辐射(上流或超荧光)的急剧增加。尽管它是由于其预测这一现象受到了剧烈的实验和理论研究,但尤其存在开放的问题,特别是关于从真空状态到超辐射状态的可能性。在基于自然和电荷的人工原子的系统中,这种转换是“无-PO-GO-GO”定理禁止的。在这里,我们在数字上展示并确认了在一维量子超材料中的一个类似的过渡,在一维的人工原子(Qubits)链中强烈地与传输线中的经典电磁场相互作用。系统从真空状态从真空状态与沿传输线的一个或多个磁孤子和有限平均占据Qubit激发状态的逐个占用。 QS相中的量子超材料通过激发非线性电磁孤子显着降低了其相对于真空状态的总能量来缩短“无-PO”限制。

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