消散
半导体
材料科学
电导率
带隙
电子设备和系统的热管理
光电子学
物理
热力学
机械工程
工程类
量子力学
作者
Cheng Tan,Derek Y. H. Ho,Lei Wang,J. I. A. Li,Indra Yudhistira,Daniel Rhodes,Takashi Taniguchi,Kenji Watanabe,Kenneth L. Shepard,Paul L. McEuen,Cory R. Dean,Shaffique Adam,James Hone
出处
期刊:Science Advances
[American Association for the Advancement of Science (AAAS)]
日期:2022-04-15
卷期号:8 (15): eabi8481-eabi8481
被引量:31
标识
DOI:10.1126/sciadv.abi8481
摘要
Electronic transport in the regime where carrier-carrier collisions are the dominant scattering mechanism has taken on new relevance with the advent of ultraclean two-dimensional materials. Here, we present a combined theoretical and experimental study of ambipolar hydrodynamic transport in bilayer graphene demonstrating that the conductivity is given by the sum of two Drude-like terms that describe relative motion between electrons and holes, and the collective motion of the electron-hole plasma. As predicted, the measured conductivity of gapless, charge-neutral bilayer graphene is sample- and temperature-independent over a wide range. Away from neutrality, the electron-hole conductivity collapses to a single curve, and a set of just four fitting parameters provides quantitative agreement between theory and experiment at all densities, temperatures, and gaps measured. This work validates recent theories for dissipation-enabled hydrodynamic conductivity and creates a link between semiconductor physics and the emerging field of viscous electronics.
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