论文标题

Kekulé-Paterned石墨烯的电子和光导率:Interavalley和Intervalley Transpert

Electronic and optical conductivity of kekulé-patterned graphene: Intravalley and intervalley transport

论文作者

Herrera, Saúl A., Naumis, Gerardo G.

论文摘要

Kubo形式主义用于计算具有Y形kekulé键纹理的石墨烯超级晶格的电子传导率和光学电导率,类似于最近实验中可视化的电导率。我们表明,石墨烯中山谷之间的新传导通道由kekulé扭曲打开。原始石墨烯中不存在此Intervalley对电子传输的贡献,并且由于Dirac Cones $ k $,$ k'$彼此之间的折叠而出现。详细分析了不同频率,温度,化学势和散射速率限制的Intervelley转运对石墨烯电导率的贡献以及Interavalley运输的修饰。我们获得了用于拟合石墨烯中实验测量的先前表达式的电导率的分析表达式,并与Kubo公式的直接数值评估进行比较,从而发现了很大的一致性。 Intervalley转换产生的光吸收以特殊频率显示最大,可以通过掺杂来调整。我们的结果表明,如何通过测量杂质阻止带相互转变的区域中测量石墨烯的光吸光度来获得描述该系统中山谷耦合的单个参数。最后,我们使用费米的黄金法则独立验证了以前的一些结果。

A Kubo formalism is used to calculate the electronic and optical conductivity of a graphene superlattice with Y-shaped kekulé bond texture, similar to that visualized in recent experiments. We show that new conduction channels between the valleys in graphene are opened by the kekulé distortion. This intervalley contribution to the electronic transport is not present in pristine graphene and here appears due to the folding of the Dirac cones $K$, $K'$ on top of each other. The contribution of intervalley transport to the conductivity of graphene, as well as the modification of the intravalley transport, are analyzed in detail for different frequency, temperature, chemical potential and scattering rate limits. We obtain analytical expressions for the conductivity that reproduce previous expressions used to fit experimental measurements in graphene and compare with direct numerical evaluations of the Kubo formula, finding great agreement. The optical absorption arising from intervalley transitions displays a maximum at a special frequency that can be tuned by doping. Our results show how the single parameter describing the valley coupling in this system could be obtained by measuring graphene's optical absorbance in the region where interband transitions are blocked by the impurities. Finally, we use Fermi's golden rule to independently verify some of the previous results.

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