论文标题

低角度扭曲双层石墨烯中的晶格动力学定位

Lattice dynamics localization in low-angle twisted bilayer graphene

论文作者

Gadelha, Andreij C., Ohlberg, Douglas A. A., Rabelo, Cassiano, Neto, Eliel G. S., Vasconcelos, Thiago L., Campos, João L., Lemos, Jessica S., Ornelas, Vinícius, Miranda, Daniel, Nadas, Rafael, Santana, Fabiano C., Watanabe, Kenji, Taniguchi, Takashi, van Troeye, Benoit, Lamparski, Michael, Meunier, Vincent, Nguyen, Viet-Hung, Paszko, Dawid, Charlier, Jean-Christophe, Campos, Leonardo C., Cançado, Luiz G., Medeiros-Ribeiro, Gilberto, Jorio, Ado

论文摘要

双层石墨烯中两个堆叠的晶体网络之间的低扭转角可以通过周期域的形成来进行自组织的晶格重建。该超晶格调节了振动和电子结构,对电子 - 音波耦合施加了新规则,并最终观察了强相关性和超导性。这里报道了重建的扭曲双层石墨烯中晶体超级晶格的直接光学图像,这是由纳米 - 拉曼光谱中光的非弹性散射产生的。由于晶格动力学的定位,使晶体结构具有可见光的观察,类似于菌株孤子和拓扑点引起的光谱变化的图像。结果通过几乎没有的phonon模型和电子计算合理化,该模型突出了孤子和拓扑点的相关性,尤其是对于具有较小扭曲角度的结构而言尤其明显。我们预计我们的发现将在理解Jahn-Teller效果和电子库珀配对方面发挥作用,除其他许多重要的声子相关效果外,它可能对在Twistronics领域最突出的平台中表征设备可能很有用。

A low twist angle between the two stacked crystal networks in bilayer graphene enables self-organized lattice reconstruction with the formation of a periodic domain. This superlattice modulates the vibrational and electronic structures, imposing new rules for electron-phonon coupling and the eventual observation of strong correlation and superconductivity. Direct optical images of the crystal superlattice in reconstructed twisted bilayer graphene are reported here, generated by the inelastic scattering of light in a nano-Raman spectroscope. The observation of the crystallographic structure with visible light is made possible due to lattice dynamics localization, the images resembling spectral variations caused by the presence of strain solitons and topological points. The results are rationalized by a nearly-free-phonon model and electronic calculations that highlight the relevance of solitons and topological points, particularly pronounced for structures with small twist angles. We anticipate our discovery to play a role in understanding Jahn-Teller effects and electronic Cooper pairing, among many other important phonon-related effects, and it may be useful for characterizing devices in the most prominent platform for the field of twistronics.

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