Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful for beam analysis, synthesis and comparison. This mapping is based on the measurement of the second-order moments, which are widely used for beam characterization. It is well known that two second-order moments invariants allow dividing two-dimensional signals into two classes: isotropic and anisotropic. Using the modified Iwasawa decomposition of the ray transformationmatrix and bringing the second-order moments matrix to its diagonalized form, we are able to associate the anisotropic signal with a certain point on the sphere. The latitude of this point describes the vorticity of the signal, while its longitude corresponds to the orientation ...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
We use astigmatic transformations to characterize two-dimensional superpositions of orbital-angular-...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful f...
Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful f...
Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful f...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
An SU(2) basis for the recently proposed analog of the Poincaré sphere for light beams with orbital ...
We construct Poincar´e sphere for orbital angular momentum (OAM) states for coherent and partially c...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
We use astigmatic transformations to characterize two-dimensional superpositions of orbital-angular-...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
We use astigmatic transformations to characterize two-dimensional superpositions of orbital-angular-...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful f...
Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful f...
Representation of two-dimensional optical signals on the orbital angular Poincarý sphere is useful f...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
Based on the analysis of second-order moments, a generalized canonical representation of a two-dimen...
An SU(2) basis for the recently proposed analog of the Poincaré sphere for light beams with orbital ...
We construct Poincar´e sphere for orbital angular momentum (OAM) states for coherent and partially c...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
We use astigmatic transformations to characterize two-dimensional superpositions of orbital-angular-...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...
We use astigmatic transformations to characterize two-dimensional superpositions of orbital-angular-...
A wide array of diffractive structures such as arrays of pinholes, triangular apertures, slits, and ...