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石墨烯中狄拉克流体的量子临界电导率。

Quantum-critical conductivity of the Dirac fluid in graphene.

作者信息

Gallagher Patrick, Yang Chan-Shan, Lyu Tairu, Tian Fanglin, Kou Rai, Zhang Hai, Watanabe Kenji, Taniguchi Takashi, Wang Feng

机构信息

Department of Physics, University of California, Berkeley, CA 94720, USA.

Kavli Energy NanoScience Institute, University of California, and Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA.

出版信息

Science. 2019 Apr 12;364(6436):158-162. doi: 10.1126/science.aat8687. Epub 2019 Feb 28.

Abstract

Graphene near charge neutrality is expected to behave like a quantum-critical, relativistic plasma-the "Dirac fluid"-in which massless electrons and holes collide at a rapid rate. We used on-chip terahertz spectroscopy to measure the frequency-dependent optical conductivity of clean, micrometer-scale graphene at electron temperatures between 77 and 300 kelvin. At charge neutrality, we observed the quantum-critical scattering rate characteristic of the Dirac fluid. At higher doping, we detected two distinct current-carrying modes with zero and nonzero total momenta, a manifestation of relativistic hydrodynamics. Our work reveals the quantum criticality and unusual dynamic excitations near charge neutrality in graphene.

摘要

接近电荷中性的石墨烯预计会表现得像一种量子临界的相对论性等离子体——“狄拉克流体”,其中无质量的电子和空穴以高速率碰撞。我们使用片上太赫兹光谱来测量在77至300开尔文电子温度下,清洁的微米级石墨烯的频率相关光导率。在电荷中性时,我们观察到了狄拉克流体的量子临界散射率特征。在更高的掺杂水平下,我们检测到了两种具有零总动量和非零总动量的不同载流模式,这是相对论流体动力学的一种表现。我们的工作揭示了石墨烯中电荷中性附近的量子临界性和异常的动态激发。

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