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Interaction of orbital angular momentum light with Rydberg excitons: Modifying dipole selection rules

机译:轨道角动量光与rydberg激子的相互作用:修改偶极选择规则

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摘要

Orbital angular momentum (OAM) light possesses in addition to its usual helicity (s = +/- h, depending on its circular polarization) an orbital angular momentum l. This means that in principle one can transfer more than a single quantum of h during an optical transition from light to a quantum system. However, quantum objects are usually so small (typically in the nanometer range) that they only locally probe the dipolar character of the local electric field. In order to sense the complete macroscopic electric field, we utilize Rydberg excitons in the semiconductor cuprite (Cu2O), which are single quantum objects of up to micrometer size. Their interaction with focused OAM light allows for matching the focal spot size and the wave-function diameter. Here, the common dipole selection rules (Delta j = +/- 1) should be broken, and transitions of higher Delta j with higher-order OAM states should become more probable. Based on group theory, we analyze in detail the optical selection rules governing this process. Then we are able to predict what kind of alternative exciton transitions (quantum number n and l(exc)) one would expect in absorption spectroscopy on Cu2O using different kinds of OAM light.
机译:轨道角动量(OAM)光除了其通常的螺旋(S = +/-H,根据其圆极化)轨道角动量L.这意味着原则上,在从光到量子系统的光学过渡期间可以在光学过渡期间转移超过单量子H.然而,量子物体通常如此小(通常在纳米范围内),它们仅在局部地探测局部电场的双极性质。为了感测完整的宏观电场,我们利用半导体铜矿(Cu2O)中的rydberg激子,其是单量子物体,其尺寸高达。它们与聚焦OAM光的相互作用允许匹配焦点尺寸和波浪函数直径。这里,应该破坏常见的偶极选择规则(Delta J = +/- 1),并且具有高阶OAM状态的高度ΔJ的转换应变得更加可能。基于集团理论,我们详细介绍了管理此过程的光学选择规则。然后我们能够预测使用不同种类的OAM光线在Cu2O上的吸收光谱中的替代激子转变(量子数N和L(Exc))。

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  • 来源
    《Physical review》 |2019年第11期|115308.1-115308.7|共7页
  • 作者单位

    Univ Stuttgart Phys Inst 4 Pfaffenwaldring 57 D-70569 Stuttgart Germany|Univ Stuttgart Res Ctr SCoPE Pfaffenwaldring 57 D-70569 Stuttgart Germany;

    Univ Rostock Inst Phys Albert Einstein Str 23 D-18059 Rostock Germany;

    Univ Stuttgart Phys Inst 4 Pfaffenwaldring 57 D-70569 Stuttgart Germany|Univ Stuttgart Res Ctr SCoPE Pfaffenwaldring 57 D-70569 Stuttgart Germany;

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