Spin-Orbit Coupling for Optical Vortex Generation in van der Waals Materials

Fuente: arXiv
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Main Authors: Jo, Jaegang, Byun, Sujeong, Bae, Munseong, Wang, Jianwei, Chung, Haejun, Kim, Sejeong
Format: Preprint
Published: 2024
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_version_ 1866917755122352128
author Jo, Jaegang
Byun, Sujeong
Bae, Munseong
Wang, Jianwei
Chung, Haejun
Kim, Sejeong
author_facet Jo, Jaegang
Byun, Sujeong
Bae, Munseong
Wang, Jianwei
Chung, Haejun
Kim, Sejeong
contents An optical vortex beam has attracted significant attention across diverse applications, including optical manipulation, phase-contrast microscopy, optical communication, and quantum photonics. To utilize vortex generators for integrated photonics, researchers have developed ultra-compact vortex generators using fork gratings, metasurfaces, and integrated microcombs. However, those devices depend on costly, time-consuming nanofabrication and are constrained by the low signal-to-noise ratio due to the fabrication error. As an alternative maneuver, spin-orbit coupling has emerged as a method to obtain the vortex beam by converting spin angular momentum (SAM) without nanostructures. Here, we demonstrate the creation of an optical vortex beam using van der Waals (vdW) materials. The significantly high birefringence of vdW materials allows generations of optical vortex beams with high efficiency in a sub-wavelength thickness. In this work, we utilize an 8-um-thick hexagonal boron nitride (hBN) crystal for the creation of optical vortices carrying topological charges of +2 and -2. We also present the generation of an optical vortex beam in a 320-nm-thick MoS2 crystal with a conversion efficiency of 0.09. This study paves the way for fabrication-less and ultra-compact optical vortex generators, which can be applied for integrated photonics and large-scale vortex generator arrays.
format Preprint
id arxiv_https___arxiv_org_abs_2408_12061
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Spin-Orbit Coupling for Optical Vortex Generation in van der Waals Materials
Jo, Jaegang
Byun, Sujeong
Bae, Munseong
Wang, Jianwei
Chung, Haejun
Kim, Sejeong
Optics
Applied Physics
An optical vortex beam has attracted significant attention across diverse applications, including optical manipulation, phase-contrast microscopy, optical communication, and quantum photonics. To utilize vortex generators for integrated photonics, researchers have developed ultra-compact vortex generators using fork gratings, metasurfaces, and integrated microcombs. However, those devices depend on costly, time-consuming nanofabrication and are constrained by the low signal-to-noise ratio due to the fabrication error. As an alternative maneuver, spin-orbit coupling has emerged as a method to obtain the vortex beam by converting spin angular momentum (SAM) without nanostructures. Here, we demonstrate the creation of an optical vortex beam using van der Waals (vdW) materials. The significantly high birefringence of vdW materials allows generations of optical vortex beams with high efficiency in a sub-wavelength thickness. In this work, we utilize an 8-um-thick hexagonal boron nitride (hBN) crystal for the creation of optical vortices carrying topological charges of +2 and -2. We also present the generation of an optical vortex beam in a 320-nm-thick MoS2 crystal with a conversion efficiency of 0.09. This study paves the way for fabrication-less and ultra-compact optical vortex generators, which can be applied for integrated photonics and large-scale vortex generator arrays.
title Spin-Orbit Coupling for Optical Vortex Generation in van der Waals Materials
topic Optics
Applied Physics
url https://arxiv.org/abs/2408.12061