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Selectively tunable optical Stark effect of anisotropic excitons in atomically thin ReS2

机译:原子稀薄ReS2中各向异性激子的选择性可调光学Stark效应

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摘要

The optical Stark effect is a coherent light–matter interaction describing the modification of quantum states by non-resonant light illumination in atoms, solids and nanostructures. Researchers have strived to utilize this effect to control exciton states, aiming to realize ultra-high-speed optical switches and modulators. However, most studies have focused on the optical Stark effect of only the lowest exciton state due to lack of energy selectivity, resulting in low degree-of-freedom devices. Here, by applying a linearly polarized laser pulse to few-layer ReS2, where reduced symmetry leads to strong in-plane anisotropy of excitons, we control the optical Stark shift of two energetically separated exciton states. Especially, we selectively tune the Stark effect of an individual state with varying light polarization. This is possible because each state has a completely distinct dependence on light polarization due to different excitonic transition dipole moments. Our finding provides a methodology for energy-selective control of exciton states.
机译:光学斯塔克效应是一种相干的光-物质相互作用,描述了通过非共振光照射原子,固体和纳米结构而改变的量子态。研究人员一直致力于利用这种效应来控制激子状态,旨在实现超高速光开关和调制器。但是,由于缺乏能量选择性,大多数研究只集中在最低激子态的光学斯塔克效应上,从而导致器件的自由度低。在这里,通过对几层ReS2施加线性偏振激光脉冲,其中降低的对称性会导致激子的强平面内各向异性,我们控制了两个能量分离的激子态的光学Stark位移。特别是,我们有选择地调整具有变化光偏振的单个状态的斯塔克效应。这是可能的,因为由于不同的激子跃迁偶极矩,每个状态对光偏振的依赖性完全不同。我们的发现为激子态的能量选择性控制提供了一种方法。

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