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室温下半金属 WTe 中准粒子的赝动力学流动。

Pseudo-Hydrodynamic Flow of Quasiparticles in Semimetal WTe at Room Temperature.

机构信息

Department of Energy Science, Sungkyunkwan University, Suwon, 16419, South Korea.

Department of Physics, Technical University of Denmark, Kgs. Lyngby, Copenhagen, 2800, Denmark.

出版信息

Small. 2023 Jul;19(27):e2206604. doi: 10.1002/smll.202206604. Epub 2023 Mar 23.

Abstract

Recently, much interest has emerged in fluid-like electric charge transport in various solid-state systems. The hydrodynamic behavior of the electronic fluid reveals itself as a decrease of the electrical resistance with increasing temperature (the Gurzhi effect) in narrow channels, polynomial scaling of the resistance as a function of the channel width, violation of the Wiedemann-Franz law supported by the emergence of the Poiseuille flow. Similar to whirlpools in flowing water, the viscous electronic flow generates vortices, resulting in abnormal sign-changing electrical response driven by backflow. However, the question of whether the long-ranged sign-changing electrical response can be produced by a mechanism other than hydrodynamics has not been addressed so far. Here polarization-sensitive laser microscopy is used to demonstrate the emergence of visually similar abnormal sign-alternating patterns in semi-metallic tungsten ditelluride at room temperature where this material does not exhibit true hydrodynamics. It is found that the neutral quasiparticle current consisting of electrons and holes obeys an equation remarkably similar to the Navier-Stokes equation. In particular, the momentum relaxation is replaced by the much slower process of quasiparticle recombination. This pseudo-hydrodynamic flow of quasiparticles leads to a sign-changing charge accumulation pattern via different diffusivities of electrons and holes.

摘要

最近,人们对各种固态系统中类似流体的电荷输运产生了浓厚的兴趣。电子流体的流体力学行为表现为在窄通道中电阻随温度升高而降低(古尔吉效应),电阻随通道宽度呈多项式变化,违反了维德曼-弗朗茨定律,同时出现了泊肃叶流动。类似于流动水中的漩涡,粘性电子流会产生涡旋,从而导致由回流驱动的反常符号变化的电响应。然而,迄今为止,尚未解决除了流体动力学之外,长程符号变化的电响应是否可以通过其他机制产生的问题。在这里,偏振敏感激光显微镜被用来证明在室温下半金属二碲化钨中会出现视觉上类似的异常符号交替模式,而在这种材料中不会出现真正的流体动力学。研究发现,由电子和空穴组成的中性准粒子电流遵循一个与纳维-斯托克斯方程非常相似的方程。特别是,动量弛豫被准粒子复合的慢得多的过程所取代。这种准粒子的伪流体力学流动通过电子和空穴的不同扩散率导致电荷积累模式的符号变化。

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