Paraxial spin-induced vortex generation in epsilon-near-zero materials
Abstract
Spin–orbit interactions (SOI) of light have emerged as a prominent area of research in nanophotonics, whereas epsilon-near-zero (ENZ) materials are gaining attention for their ability to interact with electromagnetic fields peculiarly. Integrating these two, we show that homogeneous ENZ thin films enable efficient spin-to-vortex conversion even under paraxial illumination. Using a generalized angular-spectrum formalism and experimental verification, we demonstrate that circularly polarized light incident on an indium-tin-oxide slab generates a second-order vortex in the cross-circular channel. Moreover, for elliptically deformed Gaussian excitation, the spin-induced vortex undergoes astigmatic splitting into two generic vortices. In contrast, a Bessel–Gaussian annulus with phase asymmetry from a tilted axicon produces a similar vortex splitting accompanied by a spin-dependent rotation of the double-core vortex pattern. These findings, combined with the intrinsic nonlinearity of ENZ materials, highlight their potential as a versatile platform to explore SOI effects across linear and nonlinear regimes.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (8)
Aloke Jana
Anirban Ghosh
Shyamal Guchhait
Department of Bioengineering, University of Washington 3 , Seattle, Washington 98195,
Ravi K. Saripalli
Directed Energy Research Centre, Technology Innovation Institute 4 , Abu Dhabi,
N. Apurv Chaitanya
Dr. Vishwanath Karad MIT World Peace University 5 , Pune, Maharashtra,
Nirmalya Ghosh
Subhasish Dutta Gupta
Department of Physical Sciences, IISER-Kolkata 6 , Mohanpur 741246,
G. K. Samanta
Photonic Sciences Laboratory, Physical Research Laboratory 2 , Navrangupra, Ahmedabad 380009,