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Laguerre-Gaussian mode sorter

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arxiv 1803.04126 v2 pith:NQFU6IOV submitted 2018-03-12 physics.optics

Laguerre-Gaussian mode sorter

classification physics.optics
keywords spatialdevicecapablesingleapplicationsbeamcomponentcomponents
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Light's spatial properties represent an infinite state space, making it attractive for applications requiring high dimensionality, such as quantum mechanics and classical telecommunications, but also inherently spatial applications such as imaging and sensing. However, there is no demultiplexing device in the spatial domain comparable to a grating or calcite for the wavelength and polarisation domains respectively. Specifically, a simple device capable of splitting a finite beam into a large number of discrete spatially separated spots each containing a single orthogonal spatial component. We demonstrate a device capable of decomposing a beam into a Cartesian grid of identical Gaussian spots each containing a single Laguerre-Gaussian component. This is the first device capable of decomposing the azimuthal and radial components simultaneously, and is based on a single spatial light modulator and mirror. We demonstrate over 210 spatial components, meaning it is also the highest dimensionality mode multiplexer of any kind.

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Cited by 2 Pith papers

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