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Expanded horizons for generating and exploring optical angular momentum in vortex structures

机译:扩展的视野,用于生成和探索旋涡结构中的光学角动量

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Spin provides for a well-known extension to the information capacity of nanometer-scale electronic devices. Spin transfer can be effected with high fidelity between quantum dots, this type of emission being primarily associated with emission dipoles. However, in seeking to extend the more common spectroscopic connection of dipole transitions with orbital angular momentum, it has been shown impossible to securely transmit information on any other multipolar basis - partly because point detectors are confined to polarization measurement. Standard polarization methods in optics provide for only two independent degrees of freedom, such as the circular states of opposing handedness associated with photon spin. Complex light beams with structured wave-fronts or vector polarization do, however, offer a basis for additional degrees of freedom, enabling individual photons to convey far more information content. A familiar example is afforded by Laguerre-Gaussian modes, whose helically twisted wave-front and vortex fields are associated with orbital angular momentum. Each individual photon in such a beam has been shown to carry the entire spatial helical-mode information, supporting an experimental basis for sorting beams of different angular momentum content. One very recent development is a scheme for such optical vortices to be directly generated through electronic relaxation processes in structured molecular chromophore arrays.
机译:自旋为纳米级电子设备的信息容量提供了众所周知的扩展。自旋转移可以在量子点之间以高保真度实现,这种类型的发射主要与发射偶极子相关。但是,在寻求扩展偶极跃迁与轨道角动量的更常见的光谱联系时,已证明不可能在任何其他多极基础上安全地传输信息-部分原因是点检测器仅限于极化测量。光学中的标准偏振方法仅提供两个独立的自由度,例如与光子自旋相关的相反惯性的圆形状态。但是,具有结构化波前或矢量偏振的复杂光束确实为额外的自由度提供了基础,从而使单个光子能够传达更多的信息内容。 Laguerre-Gaussian模式提供了一个熟悉的示例,其螺旋扭曲的波前场和涡旋场与轨道角动量相关。已经显示出这种光束中的每个单独的光子都携带了整个空间螺旋模式信息,为分类具有不同角动量含量的光束提供了实验基础。一种非常新的发展是一种通过结构分子发色团阵列中的电子弛豫过程直接产生这种光学涡旋的方案。

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