朗道量子化
凝聚态物理
物理
相图
级联
库仑
舒布尼科夫-德哈斯效应
单层
电子
磁场
朗道理论
石墨烯
量子霍尔效应
相变
费米气体
量子振荡
相(物质)
材料科学
量子力学
化学
纳米技术
色谱法
作者
Fangyuan Yang,Ruiheng Bai,Alexander Zibrov,Sandeep Joy,Takashi Taniguchi,Kenji Watanabe,Brian Skinner,Mark O. Goerbig,Andrea F. Young
标识
DOI:10.1103/physrevlett.131.226501
摘要
The phase diagram of an interacting two-dimensional electron system in a high magnetic field is enriched by the varying form of the effective Coulomb interaction, which depends strongly on the Landau level index. While the fractional quantum Hall states that dominate in the lower-energy Landau levels have been explored experimentally in a variety of two-dimensional systems, much less work has been done to explore electron solids owing to their subtle transport signatures and extreme sensitivity to disorder. Here, we use chemical potential measurements to map the phase diagram of electron solid states in N=2, N=3, and N=4 Landau levels in monolayer graphene. Direct comparison between our data and theoretical calculations reveals a cascade of density-tuned phase transitions between electron bubble phases up to two, three, or four electrons per bubble in the N=2, 3, and 4 Landau levels, respectively. Finite-temperature measurements are consistent with melting of the solids for T≈1 K.
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