Department of Physics, Harvard University, Cambridge, MA 02138, USA.
Science. 2012 Sep 7;337(6099):1196-9. doi: 10.1126/science.1224784.
Graphene provides a rich platform to study many-body effects, owing to its massless chiral charge carriers and the fourfold degeneracy arising from their spin and valley degrees of freedom. We use a scanning single-electron transistor to measure the local electronic compressibility of suspended graphene, and we observed an unusual pattern of incompressible fractional quantum Hall states that follows the standard composite fermion sequence between filling factors ν = 0 and 1 but involves only even-numerator fractions between ν = 1 and 2. We further investigated this surprising hierarchy by extracting the corresponding energy gaps as a function of the magnetic field. The sequence and relative strengths of the fractional quantum Hall states provide insight into the interplay between electronic correlations and the inherent symmetries of graphene.
石墨烯提供了一个丰富的平台来研究多体效应,这要归功于其无质量手性电荷载流子和由于其自旋和谷自由度而产生的四重简并。我们使用扫描单电子晶体管来测量悬浮石墨烯的局部电子压缩率,并观察到了一种不寻常的不可压缩分数量子霍尔态模式,该模式遵循填充因子 ν = 0 到 1 之间的标准复合费米子序列,但仅涉及 ν = 1 到 2 之间的偶数分数。我们进一步通过提取相应的能隙作为磁场的函数来研究这个令人惊讶的顺序。分数量子霍尔态的顺序和相对强度提供了对电子相关和石墨烯固有对称性相互作用的深入了解。