Optical Vortex Spin-Orbit Control of Refractive Index in Iron Garnets

Fuente: arXiv
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Main Authors: Nelson, Seth, Yu, Cong, Watson, Daniel, Ramtinfard, Shahrzad, Levy, Miguel
Format: Preprint
Published: 2025
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author Nelson, Seth
Yu, Cong
Watson, Daniel
Ramtinfard, Shahrzad
Levy, Miguel
author_facet Nelson, Seth
Yu, Cong
Watson, Daniel
Ramtinfard, Shahrzad
Levy, Miguel
contents The interaction between light's angular momentum (AM) and material systems has unlocked new avenues in structured photonics, including in magneto-optical (MO) materials. While spin angular momentum (SAM) effects in MO systems are well-established, orbital angular momentum (OAM) introduces novel opportunities for new nonreciprocal light-matter interactions. In this study, we demonstrate a unique optical phenomenon where OAM states undergo state-specific nonreciprocal operation within an MO medium, reducing Faraday rotation. This effect arises from transverse momentum transfer into the material, inducing spin-orbit coupling (SOC) at a perturbed electronic transition rate. The resulting OAM-dependent optical SOC modifies the material's refractive index, directly linking structured light and MO response. Our findings extend previous observations of paraxial beams and reveal a deeper fundamental mechanism governing OAM-driven nonreciprocal interactions. These insights pave the way for OAM-selective nonreciprocal photonic devices, chiral optical logic, quantum memory elements, and ultrafast spintronic architectures. This work advances MO integration with structured light for enhanced control over photonic and spintronic systems.
format Preprint
id arxiv_https___arxiv_org_abs_2507_02093
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Optical Vortex Spin-Orbit Control of Refractive Index in Iron Garnets
Nelson, Seth
Yu, Cong
Watson, Daniel
Ramtinfard, Shahrzad
Levy, Miguel
Optics
Applied Physics
The interaction between light's angular momentum (AM) and material systems has unlocked new avenues in structured photonics, including in magneto-optical (MO) materials. While spin angular momentum (SAM) effects in MO systems are well-established, orbital angular momentum (OAM) introduces novel opportunities for new nonreciprocal light-matter interactions. In this study, we demonstrate a unique optical phenomenon where OAM states undergo state-specific nonreciprocal operation within an MO medium, reducing Faraday rotation. This effect arises from transverse momentum transfer into the material, inducing spin-orbit coupling (SOC) at a perturbed electronic transition rate. The resulting OAM-dependent optical SOC modifies the material's refractive index, directly linking structured light and MO response. Our findings extend previous observations of paraxial beams and reveal a deeper fundamental mechanism governing OAM-driven nonreciprocal interactions. These insights pave the way for OAM-selective nonreciprocal photonic devices, chiral optical logic, quantum memory elements, and ultrafast spintronic architectures. This work advances MO integration with structured light for enhanced control over photonic and spintronic systems.
title Optical Vortex Spin-Orbit Control of Refractive Index in Iron Garnets
topic Optics
Applied Physics
url https://arxiv.org/abs/2507.02093