Structured light is attracting significant attention for its diverse applications in both classical and quantum optics. The so-called vector vortex beams display peculiar properties in both contexts due to the nontrivial correlations between optical polarization and orbital angular momentum. Here we demonstrate a new, flexible experimental approach to the classification of vortex vector beams. We first describe a platform for generating arbitrary complex vector vortex beams inspired to photonic quantum walks. We then exploit recent machine learning methods - namely, convolutional neural networks and principal component analysis - to recognize and classify specific polarization patterns. Our study demonstrates the significant advantages resu...
We develop a method to characterize arbitrary superpositions of light orbital angular momentum (OAM)...
Despite a plethora of applications ranging from quantum memories to high-resolution lithography, the...
Light-matter interaction optimization in complex nanophotonic structures is a critical step towards ...
Structured light is attracting significant attention for its diverse applications in both classical ...
Due to countless orthogonal eigenstates, light beams with orbital angular momentum(OAM) have a large...
Light beams having a vectorial field structure, or polarization, that varies over the transverse pro...
The multiplexing and de-multiplexing of orbital angular momentum (OAM) beams are critical issues in ...
Optimal method are applied in characterizing and reconstructing designed unitary matrices on linear ...
Vector vortex beams are structured states of light that are nonseparable in their polarisation and s...
The full structuration of light in the transverse plane, including intensity, phase and polarization...
Encoding information in high-dimensional degrees of freedom of photons has led to new avenues in var...
Vector vortex beams, featuring independent spatial modes in orthogonal polarization components, offe...
Quantum vortices in atomic Bose-Einstein condensates (BECs) are topological defects characterized by...
The manipulation of the spatial structure of a light beam has many application in both classical and...
We develop a method to characterize arbitrary superpositions of light orbital angular momentum (OAM)...
Despite a plethora of applications ranging from quantum memories to high-resolution lithography, the...
Light-matter interaction optimization in complex nanophotonic structures is a critical step towards ...
Structured light is attracting significant attention for its diverse applications in both classical ...
Due to countless orthogonal eigenstates, light beams with orbital angular momentum(OAM) have a large...
Light beams having a vectorial field structure, or polarization, that varies over the transverse pro...
The multiplexing and de-multiplexing of orbital angular momentum (OAM) beams are critical issues in ...
Optimal method are applied in characterizing and reconstructing designed unitary matrices on linear ...
Vector vortex beams are structured states of light that are nonseparable in their polarisation and s...
The full structuration of light in the transverse plane, including intensity, phase and polarization...
Encoding information in high-dimensional degrees of freedom of photons has led to new avenues in var...
Vector vortex beams, featuring independent spatial modes in orthogonal polarization components, offe...
Quantum vortices in atomic Bose-Einstein condensates (BECs) are topological defects characterized by...
The manipulation of the spatial structure of a light beam has many application in both classical and...
We develop a method to characterize arbitrary superpositions of light orbital angular momentum (OAM)...
Despite a plethora of applications ranging from quantum memories to high-resolution lithography, the...
Light-matter interaction optimization in complex nanophotonic structures is a critical step towards ...