Seiler Anna M, Statz Martin, Weimer Isabell, Jacobsen Nils, Watanabe Kenji, Taniguchi Takashi, Dong Zhiyu, Levitov Leonid S, Weitz R Thomas
1st Physical Institute, Faculty of Physics, <a href="https://ror.org/01y9bpm73">University of Göttingen</a>, Friedrich-Hund-Platz 1, Göttingen 37077, Germany.
Research Center for Functional Materials, <a href="https://ror.org/026v1ze26">National Institute for Materials Science</a>, 1-1 Namiki, Tsukuba 305-0044, Japan.
Phys Rev Lett. 2024 Aug 9;133(6):066301. doi: 10.1103/PhysRevLett.133.066301.
Bernal bilayer graphene has recently been discovered to exhibit a wide range of unique ordered phases resulting from interaction-driven effects and encompassing spin and valley magnetism, correlated insulators, correlated metals, and superconductivity. This Letter reports on a novel family of correlated phases characterized by spin and valley ordering, distinct from those reported previously. These phases emerge in electron-doped bilayer graphene where the energy bands are exceptionally flat, manifested through an intriguing nonlinear current-bias behavior that occurs at the onset of the phases and is accompanied by an insulating temperature dependence. These characteristics align with the presence of charge- or spin-density-wave states that open a gap on a portion of the Fermi surface or fully gapped Wigner crystals, resulting in an exceptionally intricate phase diagram.
最近发现,伯纳尔双层石墨烯由于相互作用驱动效应而展现出一系列独特的有序相,包括自旋和能谷磁性、关联绝缘体、关联金属和超导性。本信函报道了一类以自旋和能谷序为特征的新型关联相,与之前报道的不同。这些相出现在电子掺杂的双层石墨烯中,其能带异常平坦,通过这些相开始时出现的有趣的非线性电流 - 偏置行为表现出来,并伴随着绝缘的温度依赖性。这些特征与电荷或自旋密度波态的存在相一致,这些态在费米面的一部分上打开能隙或形成完全能隙的维格纳晶体,从而产生异常复杂的相图。