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Dirac cones and Dirac saddle points of bright excitons in monolayer transition metal dichalcogenides

机译:Dirac cones and Dirac saddle points of bright excitons in monolayer transition metal dichalcogenides

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摘要

In monolayer transition metal dichalcogenides, tightly bound excitons have been discovered with a valley pseudospin optically addressable through polarization selection rules. Here, we show that this valley pseudospin is strongly coupled to the exciton centre-of-mass motion through electron-hole exchange. This coupling realizes a massless Dirac cone with chirality index I=2 for excitons inside the light cone, that is, bright excitons. Under moderate strain, the I=2 Dirac cone splits into two degenerate I=1 Dirac cones, and saddle points with a linear Dirac spectrum emerge. After binding an extra electron, the charged exciton becomes a massive Dirac particle associated with a large valley Hall effect protected from intervalley scattering. Our results point to unique opportunities to study Dirac physics, with exciton's optical addressability at specifiable momentum, energy and pseudospin. The strain-tunable valley-orbit coupling also implies new structures of exciton condensates, new functionalities of excitonic circuits and mechanical control of valley pseudospin. © 2014 Macmillan Publishers Limited.
机译:在单层过渡金属二卤化物中,已发现具有紧密结合的激子,具有通过伪极化选择规则可光学寻址的谷假自旋。在这里,我们显示出该谷假自旋通过电子-空穴交换与激子质心运动紧密耦合。这种耦合实现了对于轻锥内部的激子,即明亮激子,具有手性指数I = 2的无质量狄拉克锥。在中等应变下,I = 2狄拉克锥分裂为两个简并的I = 1狄拉克锥,并出现具有线性狄拉克谱的鞍点。结合额外的电子后,带电的激子变成块状狄拉克粒子,与大谷霍耳效应相关联,免受区间间隔散射。我们的结果为研究狄拉克物理学提供了独特的机会,在指定的动量,能量和伪自旋下,激子的光学寻址能力更高。应变可调的谷轨道耦合还意味着激子凝聚物的新结构,激子电路的新功能以及谷自旋的机械控制。 ©2014 Macmillan Publishers Limited。

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