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Thermal and electrical signatures of a hydrodynamic electron fluid in tungsten diphosphide

机译:二磷化钨中流体动力电子流体的热学和电学特征

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摘要

In stark contrast to ordinary metals, in materials in which electrons strongly interact with each other or with phonons, electron transport is thought to resemble the flow of viscous fluids. Despite their differences, it is predicted that transport in both conventional and correlated materials is fundamentally limited by the uncertainty principle applied to energy dissipation. Here we report the observation of experimental signatures of hydrodynamic electron flow in the Weyl semimetal tungsten diphosphide. Using thermal and magneto-electric transport experiments, we find indications of the transition from a conventional metallic state at higher temperatures to a hydrodynamic electron fluid below 20 K. The hydrodynamic regime is characterized by a viscosity-induced dependence of the electrical resistivity on the sample width and by a strong violation of the Wiedemann–Franz law. Following the uncertainty principle, both electrical and thermal transport are bound by the quantum indeterminacy, independent of the underlying transport regime.
机译:与普通金属形成鲜明对比的是,在电子相互之间或与声子强烈相互作用的材料中,电子传输被认为类似于粘性流体的流动。尽管存在差异,但可以预见,常规材料和相关材料中的传输在根本上受到应用于能量耗散的不确定性原理的限制。在这里,我们报告了在Weyl半金属二硫化钨中流体动力电子流动的实验特征的观察结果。通过热和磁电传输实验,我们发现了从高温下的常规金属态到低于20 K的流体动力电子流体的转变的迹象,流体动力机制的特征是粘度引起的样品电阻率依赖性并严重违反Wiedemann-Franz法则。遵循不确定性原理,电传输和热传输均受量子不确定性的约束,而与基本传输方式无关。

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