论文标题

复杂网络中的超级级相变

Superradiant phase transition in complex networks

论文作者

Bazhenov, Andrei Yu., Tsarev, Dmitriy V., Alodjants, Alexander P.

论文摘要

在这项工作中,我们考虑了Dicke-asising模型的超级相位过渡问题,该模型概括了Dicke和Ising模型的退火复杂网络,这些网络假定自旋旋转相互作用。该模型说明了自旋(两级)系统与外部经典(磁)和量化(横向)字段之间的相互作用。我们分别检查了以三角函数,随机(泊松)和幂律指数分布为特征的规则,随机和无尺度的网络结构。为了描述顺磁性(PM) - 铁磁(FM)和超级(SR)相变,我们引入了两个阶参数:总加权自旋Z组件和归一化的横向场振幅,分别对应于Z和X方向的自发磁化。由于网络中自旋相互作用和有限尺寸效应之间的相互作用,我们首先在存在PM-FM相变的情况下阐明了SR状态的新特征。我们揭示了SR相变的临界温度从与临界节点的临界数相对应的某些特定值中单调增长。对于无标度网络,我们发现该临界温度随着度指数的增加而上升,这既是通过在量子横向场中建立自发的磁化以及在z方向上消失的集体旋转成分的消失。此外,当临界温度接近零时,我们建立了网络参数在自旋系统中获得量子相变的条件。讨论了涉及经典和量子场参数的临界值的基本特征,以在此限制下出现超平稳阶段的出现。

In this work we consider a superradiant phase transition problem for the Dicke-Ising model, which generalizes the Dicke and Ising models for annealed complex networks presuming spin-spin interaction. The model accounts the interaction between a spin (two-level) system and external classical (magnetic) and quantized (transverse) fields. We examine regular, random, and scale-free network structures characterized by the delta-function, random (Poisson), and power-law exponent degree distributions, respectively. To describe paramagnetic (PM) - ferromagnetic (FM) and superradiant (SR) phase transitions we introduce two order parameters: the total weighted spin z-component and the normalized transverse field amplitude, which correspond to the spontaneous magnetization in z and x directions, respectively. Due to the interplay between the spin interaction and the finite size effects in the networks we first elucidate novel features of the SR state in the presence of the PM-FM phase transition. We reveal that the critical temperature of the SR phase transition grows monotonically from some certain value that corresponds to the critical number of nodes. For the scale-free networks we find that this critical temperature rises with the degree exponent increase accompanied both by establishing spontaneous magnetization in a quantum transverse field and vanishing of the collective spin component in z direction. In addition, we establish the conditions for the network parameters to obtain a quantum phase transition in the spin system when the critical temperature approaches zero. The fundamental features, which involve critical values of the classical and quantum field parameters, are discussed for the occurrence of the superradiance phase in this limit.

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