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分数量子霍尔体系中复合费米子的回旋轨道

Cyclotron Orbits of Composite Fermions in the Fractional Quantum Hall Regime.

作者信息

Jo Insun, Deng Hao, Liu Yang, Pfeiffer L N, West K W, Baldwin K W, Shayegan M

机构信息

Department of Electrical Engineering, Princeton University, Princeton, New Jersey 08544, USA.

出版信息

Phys Rev Lett. 2018 Jan 5;120(1):016802. doi: 10.1103/PhysRevLett.120.016802.

Abstract

We study a bilayer GaAs hole system that hosts two distinct many-body phases at low temperatures and high perpendicular magnetic fields. The higher-density (top) layer develops a Fermi sea of composite fermions (CFs) in its half-filled lowest Landau level, while the lower-density (bottom) layer forms a Wigner crystal (WC) as its filling becomes very small. Owing to the interlayer interaction, the CFs in the top layer feel the periodic Coulomb potential of the WC in the bottom layer. We measure the magnetoresistance of the top layer while changing the bottom-layer density. As the WC layer density increases, the resistance peaks separating the adjacent fractional quantum Hall states in the top layer change nonmonotonically and attain maximum values when the cyclotron orbit of the CFs encloses one WC lattice point. These features disappear at T=275  mK when the WC melts. The observation of such geometric resonance features is unprecedented and surprising as it implies that the CFs retain a well-defined cyclotron orbit and Fermi wave vector even deep in the fractional quantum Hall regime, far from half-filling.

摘要

我们研究了一种双层砷化镓空穴系统,该系统在低温和高垂直磁场下呈现出两种不同的多体相。高密度(顶层)层在其半填充的最低朗道能级中形成了复合费米子(CFs)的费米海,而低密度(底层)层在其填充变得非常小时形成了维格纳晶体(WC)。由于层间相互作用,顶层的CFs感受到底层WC的周期性库仑势。我们在改变底层密度的同时测量顶层的磁阻。随着WC层密度的增加,顶层中分隔相邻分数量子霍尔态的电阻峰非单调变化,并且当CFs的回旋轨道包围一个WC晶格点时达到最大值。当WC熔化时,这些特征在T = 275 mK时消失。这种几何共振特征的观测是前所未有的且令人惊讶的,因为这意味着即使在远离半填充的分数量子霍尔区域深处,CFs仍保留着明确的回旋轨道和费米波矢。

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