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Updated: Jun 11, 2026

Scanning SQUID Study of Vortex Manipulation by Local Contact
Published on: February 1, 2017
Anisotropy-driven reshaping and diagnostic limits of high-charge perfect optical vortices
Yukti Pandey1, Raj Kumar2, Nandan S Bisht3,4
1Applied Optics and Spectroscopy Laboratory, Department of Physics, Soban Singh Jeena University Campus, Almora, 263601, India.
Abstract:
Perfect optical vortices (POVs) are annular beams designed such that their radii are, in principle, independent of topological charge, making them attractive for structured illumination and optical manipulation. We present a systematic experimental and numerical study of POVs generated using a phase-only spatial light modulator and investigate how controlled angular anisotropy reshapes their structure across a wide range of charges. Three distinct regimes are identified. In the absence of anisotropy, charge-invariant annuli persist only for moderate charges, while higher charges exhibit multi-ring, Bessel-like structure accompanied by a gradual increase in effective radius. At moderate anisotropy, these multi-ring profiles consolidate into single opened annuli with tunable azimuthal asymmetry. In this regime, speckle cross-correlation remains structured even for widely separated charges that exhibit weak correlations under isotropic encoding. At extreme anisotropy, annular intensity profiles converge across all charges, forming pseudo-POVs that remain annular in intensity but exhibit pronounced redistribution of OAM-dependent signatures and a collapse of charge-dependent cross-correlation signatures within the sensitivity of intensity-only measurements. Non-interferometric speckle analysis supports these findings. Autocorrelation rules out trivial ellipticity as the origin of radius convergence, while cross-correlation reveals sensitivity to charge ordering at low anisotropy and an effective loss of charge distinguishability within intensity-only diagnostics at extreme anisotropy. Together, these results clarify the robustness limits of POVs under angular deformation and establish angular anisotropy as a practical control parameter for engineering and diagnosing annular vortex beams.
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