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扭曲双层石墨烯中手性和慢等离子体的观察。

Observation of chiral and slow plasmons in twisted bilayer graphene.

机构信息

School of Electronic Science and Engineering, Nanjing University, Nanjing, China.

School of electronic science and engineering, University of Electronic Science and Technology of China, Chengdu, China.

出版信息

Nature. 2022 May;605(7908):63-68. doi: 10.1038/s41586-022-04520-8. Epub 2022 May 4.

DOI:10.1038/s41586-022-04520-8
PMID:35508778
Abstract

Moiré superlattices have led to observations of exotic emergent electronic properties such as superconductivity and strong correlated states in small-rotation-angle twisted bilayer graphene (tBLG). Recently, these findings have inspired the search for new properties in moiré plasmons. Although plasmon propagation in the tBLG basal plane has been studied by near-field nano-imaging techniques, the general electromagnetic character and properties of these plasmons remain elusive. Here we report the direct observation of two new plasmon modes in macroscopic tBLG with a highly ordered moiré superlattice. Using spiral structured nanoribbons of tBLG, we identify signatures of chiral plasmons that arise owing to the uncompensated Berry flux of the electron gas under optical pumping. The salient features of these chiral plasmons are shown through their dependence on optical pumping intensity and electron fillings, in conjunction with distinct resonance splitting and Faraday rotation coinciding with the spectral window of maximal Berry flux. Moreover, we also identify a slow plasmonic mode around 0.4 electronvolts, which stems from the interband transitions between the nested subbands in lattice-relaxed AB-stacked domains. This mode may open up opportunities for strong light-matter interactions within the highly sought after mid-wave infrared spectral window. Our results unveil the new electromagnetic dynamics of small-angle tBLG and exemplify it as a unique quantum optical platform.

摘要

Moiré 超晶格导致了奇异的新兴电子特性的观察,如在小转角扭曲双层石墨烯(tBLG)中的超导性和强关联态。最近,这些发现激发了对 moiré 等离激元新特性的探索。尽管 tBLG 基面上的等离激元传播已经通过近场纳米成像技术进行了研究,但这些等离激元的一般电磁特性和性质仍然难以捉摸。在这里,我们报告了在具有高度有序的 moiré 超晶格的宏观 tBLG 中直接观察到的两种新的等离激元模式。我们使用 tBLG 的螺旋结构纳米带,确定了由于光泵浦下电子气的未补偿 Berry 通量而产生的手性等离激元的特征。这些手性等离激元的显著特征表现为它们对光泵浦强度和电子填充的依赖性,以及与最大 Berry 通量光谱窗口相吻合的明显共振分裂和法拉第旋转。此外,我们还确定了一个围绕 0.4 电子伏特的慢等离激元模式,它源于晶格弛豫 AB 堆叠域中嵌套子带之间的带间跃迁。这种模式可能为在高度追求的中波红外光谱窗口内的强光物质相互作用开辟机会。我们的结果揭示了小角度 tBLG 的新电磁动力学,并将其作为一个独特的量子光学平台进行了示例。

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