相互作用下分数量子霍尔电导率的非重整化

IF 3 3区 物理与天体物理 Q2 PHYSICS, MULTIDISCIPLINARY
M. Selch, M.A. Zubkov, Souvik Pramanik, M. Lewkowicz
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引用次数: 0

摘要

我们研究了Lopez和Fradkin(1991)很久以前提出的描述主Jain级数的分数量子霍尔效应(QHE)理论。附在电子上的统计规范场的磁通量在与电子液体一起运动的参考系中保持静止。在实验室参考系中,统计规场的电场形成并屏蔽外部电场。分数QHE电导率作为这种筛选的结果已经出现在平均场理论水平上。我们考虑了模型的相对论性扩展,并在Zubarev统计算子方法中提出了基于电子液体宏观运动的分数阶QHE的替代描述。正是这种电子的宏观运动在这种模式下产生了分数阶QHE。在这种方法中,我们提出了对所有阶微扰理论的证明,证明相互作用修正不能改变上述QHE电导率的平均场理论结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Non-renormalization of the fractional quantum Hall conductivity by interactions
We investigate the theory of the fractional quantum Hall effect (QHE) proposed a long time ago by Lopez and Fradkin (1991) to describe the principal Jain series. The magnetic fluxes of the statistical gauge field attached to electrons remain at rest in the reference frame moving together with the electron liquid. In the laboratory reference frame the electric field of the statistical gauge field forms and screens the external electric field. The fractional QHE conductivity appears as a consequence of this screening already on the mean field theory level. We consider a relativistic extension of the model, and propose an alternative description of the fractional QHE based on macroscopic motion of the electron liquid within the Zubarev statistical operator approach. It is this macroscopic motion of electrons which in this pattern gives rise to the fractional QHE. Within this approach we propose the proof to all orders of perturbation theory that the interaction corrections cannot change the above mentioned mean field theory result for the QHE conductivity.
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来源期刊
Annals of Physics
Annals of Physics 物理-物理:综合
CiteScore
5.30
自引率
3.30%
发文量
211
审稿时长
47 days
期刊介绍: Annals of Physics presents original work in all areas of basic theoretic physics research. Ideas are developed and fully explored, and thorough treatment is given to first principles and ultimate applications. Annals of Physics emphasizes clarity and intelligibility in the articles it publishes, thus making them as accessible as possible. Readers familiar with recent developments in the field are provided with sufficient detail and background to follow the arguments and understand their significance. The Editors of the journal cover all fields of theoretical physics. Articles published in the journal are typically longer than 20 pages.
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