Hall effect in a ballistic flow of two-dimensional interacting particles

被引:22
|
作者
Alekseev, P. S. [1 ]
Semina, M. A. [1 ]
机构
[1] Ioffe Inst, St Petersburg 194021, Russia
关键词
ELECTRON; RESISTANCE;
D O I
10.1103/PhysRevB.100.125419
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
In high-quality conductors, the hydrodynamic or the ballistic regimes of heat and charge transport can be realized at low temperatures. We study the Hall effect in a system of interacting two-dimensional charged particles in a narrow ballistic sample in a weak magnetic field. In such a system, the Hall electric field is mainly caused by redistribution of the particles moving between the longitudinal sample edges along the ballistic collisionless trajectories. Our consideration is based on solving the classical kinetic equation in the ballistic regime with taking into account the interparticle scattering and the magnetic force by the perturbation theory. In a one-component (electron or hole) system, the Hall coefficient turns out to be one-half of the Hall coefficient of conventional wide Ohmic samples. We argue that this result is apparently consistent with the recent measurements of the Hall resistance in ultra-high-mobility GaAs quantum wells. In a two-component electron-hole system, the Hall coefficient depends linearly on the difference n(0)(e) - n(0)(h) between the electron and the hole equilibrium densities n(0)(e) and n(0)(h) near the charge neutrality point (n(0)(e) = n(0)(h)) and saturates to the Hall coefficient of a one-component system far from the charge neutrality point (n(0)(e) >> n(0)(h) or n(0)(e) << n(0)(h)). We also studied the corrections from the interparticle scattering to magnetoresistance and the Hall effect, being the precursors of forming the viscous or the Ohmic flows.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Effective viscosity of a two-dimensional suspension of interacting active particles
    Moradi, Moslem
    Najafi, Ali
    PHYSICAL REVIEW E, 2017, 96 (02)
  • [22] Dynamics of interacting Brownian particles in a two-dimensional periodic potential
    Mazroui, M
    Asaklil, A
    Boughaleb, Y
    JOURNAL DE PHYSIQUE I, 1997, 7 (05): : 675 - 690
  • [23] Localization Parameters for Two Interacting Particles in Disordered Two-Dimensional Finite Lattices
    Chattaraj, Tirthaprasad
    CONDENSED MATTER, 2018, 3 (04): : 1 - 8
  • [24] Two-dimensional folded CMOS Hall device with interacting lateral magnetotransistor and magnetoresistor
    Yu, Chih-Ping
    Sung, Guo-Ming
    SENSORS AND ACTUATORS A-PHYSICAL, 2012, 182 : 6 - 15
  • [25] The effect of inertia on the dispersion of particles in the flow around a two-dimensional flat plate
    Gomes, MSP
    Vincent, JH
    CHEMICAL ENGINEERING SCIENCE, 2002, 57 (08) : 1319 - 1329
  • [26] Layer Hall Effect in Multiferroic Two-Dimensional Materials
    Feng, Yangyang
    Dai, Ying
    Huang, Baibiao
    Kou, Liangzhi
    Ma, Yandong
    NANO LETTERS, 2023, 23 (11) : 5367 - 5372
  • [27] Hall effect in a two-dimensional disordered Lorentz gas
    Sanvee, Benjamin
    Schluck, Jakob
    Cerchez, Mihai
    Mailly, Dominique
    Schumacher, Hans W.
    Pierz, Klaus
    Heinzel, Thomas
    Horbach, Juergen
    PHYSICAL REVIEW B, 2023, 108 (03)
  • [28] Anomalous Hall effect in a two-dimensional hole system
    Gusev, GM
    Quivy, AA
    Lamas, TE
    Leite, JR
    Portal, JC
    Physics of Semiconductors, Pts A and B, 2005, 772 : 547 - 548
  • [29] Nonlinear ac Hall effect in two-dimensional superconductors
    Sonowal, K.
    Parafilo, A. V.
    Kovalev, V. M.
    Savenko, I. G.
    PHYSICAL REVIEW B, 2024, 110 (20)
  • [30] Quantum hall effect in two-dimensional vortex liquids
    Horovitz, B
    PHYSICA B-CONDENSED MATTER, 1996, 222 (04) : 370 - 373