论文标题
角度分辨的转运非记录和自发对称性在扭曲的三层石墨烯中破裂
Angle-resolved transport nonreciprocity and spontaneous symmetry breaking in twisted trilayer graphene
论文作者
论文摘要
识别和表征自发对称性破坏的能力对于我们对具有强相关性的2D材料的理解至关重要,例如魔法扭曲的石墨烯双层和三层型中的Moiré平面带。在这项工作中,我们利用了转运非交通的角度分辨测量值研究扭曲的三层石墨烯中自发对称性破裂。通过分析纵向和横向通道中非肾脏的角度依赖性,我们能够识别与基础电子秩序相关的对称轴。我们报告说,镜轴中的滞后旋转可以通过热循环和较大的电流偏见引起,这为旋转对称性的自发断裂提供了明确的证据。此外,随着温度降低的非肾脏发作与轨道铁磁剂的出现相吻合。与超导二极管效应的角度依赖性结合在一起,我们的发现发现了旋转与时间反转对称性断裂之间的直接联系。这些对称要求指出了动量空间中以交换驱动的不稳定性,这是TTLG中非交通非洲转运的可能起源。
The ability to identify and characterize spontaneous symmetry breaking is central to our understanding of 2D materials with strong correlation, such as the moiré flat bands in magic-angle twisted graphene bilayer and trilayer. In this work, we utilize angle-resolved measurements of transport nonreciprocity to investigate spontaneous symmetry breaking in twisted trilayer graphene. By analyzing the angular dependence of nonreciprocity in both longitudinal and transverse channels, we are able to identify the symmetry axis associated with the underlying electronic order. We report that a hysteretic rotation in the mirror axis can be induced by thermal cycles and a large current bias, which offers unambiguous evidence for the spontaneous breaking of rotational symmetry. Moreover, the onset of nonreciprocity with decreasing temperature coincides with the emergence of orbital ferromagnetism. Combined with the angular dependence of the superconducting diode effect, our findings uncover a direct link between rotational and time-reversal symmetry breaking. These symmetry requirements point towards the exchange-driven instabilities in the momentum space as a possible origin for transport nonreciprocity in tTLG.