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观测石墨烯中的流体动力等离子体和能量波。

Observation of hydrodynamic plasmons and energy waves in graphene.

机构信息

Department of Physics, University of California at Berkeley, Berkeley, CA, USA.

Graduate Group in Applied Science and Technology, University of California at Berkeley, Berkeley, CA, USA.

出版信息

Nature. 2023 Feb;614(7949):688-693. doi: 10.1038/s41586-022-05619-8. Epub 2023 Feb 22.

Abstract

Thermally excited electrons and holes form a quantum-critical Dirac fluid in ultraclean graphene and their electrodynamic responses are described by a universal hydrodynamic theory. The hydrodynamic Dirac fluid can host intriguing collective excitations distinctively different from those in a Fermi liquid. Here we report the observation of the hydrodynamic plasmon and energy wave in ultraclean graphene. We use the on-chip terahertz (THz) spectroscopy technique to measure the THz absorption spectra of a graphene microribbon as well as the propagation of the energy wave in graphene close to charge neutrality. We observe a prominent high-frequency hydrodynamic bipolar-plasmon resonance and a weaker low-frequency energy-wave resonance of the Dirac fluid in ultraclean graphene. The hydrodynamic bipolar plasmon is characterized by the antiphase oscillation of massless electrons and holes in graphene. The hydrodynamic energy wave is an electron-hole sound mode with both charge carriers oscillating in phase and moving together. The spatial-temporal imaging technique shows that the energy wave propagates at a characteristic speed of [Formula: see text] near the charge neutrality. Our observations open new opportunities to explore collective hydrodynamic excitations in graphene systems.

摘要

在超洁净石墨烯中,热激发的电子和空穴形成了一种量子临界的狄拉克流体,其电动力学响应可以用一种通用的流体力学理论来描述。这种流体力学的狄拉克流体可以承载有趣的集体激发,与费米液体中的集体激发明显不同。在这里,我们报告了在超洁净石墨烯中观察到的流体力学等离子体和能量波。我们使用片上太赫兹(THz)光谱技术来测量石墨烯微带的太赫兹吸收光谱以及在接近电荷中性的情况下石墨烯中能量波的传播。我们观察到超洁净石墨烯中狄拉克流体的显著高频双极等离子体共振和较弱的低频能量波共振。流体力学双极等离子体的特征是石墨烯中无质量电子和空穴的反相振荡。流体力学能量波是一种电子-空穴声模,其中载流子同时相位振荡并一起运动。时空成像技术表明,能量波在接近电荷中性时以[Formula: see text]的特征速度传播。我们的观察为探索石墨烯系统中的集体流体力学激发开辟了新的机会。

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