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首页> 外文期刊>Frontiers of physics >Gravitational field around black hole induces photonic spin-orbit interaction that twists light
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Gravitational field around black hole induces photonic spin-orbit interaction that twists light

机译:黑洞周围的引力场引起光子自旋轨道相互作用,使光扭曲

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摘要

The spin-orbit interaction (SOI) of light has been intensively studied in nanophotonics because it enables sensitive control of photons' spin degree of freedom and thereby the trajectories of the photons, which is useful for applications such as signal encoding and routing. A recent study [Phys. Rev. Lett. 117, 166803 (2016)] showed that the SOI of photons manifests in the presence of a gradient in the permittivity of the medium through which the photons propagate; this enhances the scattering of circularly polarized light and results in the photons propagating along twisted trajectories. Here we theoretically predict that, because of the equivalence between an inhomogeneous dielectric medium and a gravitational field demonstrated in transformation optics, a significant SOI is induced onto circularly polarized light passing by the gravitational lens of a black hole. This leads to: i) the photons to propagate along chiral trajectories if the size of the black hole is smaller than the wavelength of the incident photons; ii) the resulting image of the gravitational lens to manifest an azimuthal rotation because of these chiral trajectories. The findings open for a way to probe for and discover subwavelength-size black holes using circularly polarized light.
机译:在纳米光子学中,对光的自旋轨道相互作用(SOI)进行了深入研究,因为它可以灵敏地控制光子的自旋自由度,从而控制光子的轨迹,这对于诸如信号编码和路由等应用很有用。最近的一项研究[Phys。牧师117,166803(2016)]表明,光子的SOI在光子传播的介质的介电常数存在梯度的情况下显现;这增强了圆偏振光的散射,并导致光子沿着扭曲的轨迹传播。在这里,我们从理论上预测,由于不均匀介电介质与转换光学中显示的重力场之间相等,因此,很大的SOI会感应到通过黑洞的重力透镜的圆偏振光上。这导致:i)如果黑洞的大小小于入射光子的波长,则光子沿手性轨迹传播; ii)由于这些手性轨迹,引力透镜所得的图像显示出方位角旋转。这些发现为利用圆偏振光探测和发现亚波长大小的黑洞开辟了道路。

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