Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure

Due to the weak spin-orbit interaction, the photonic spin Hall effect (SHE) is generally very weak, which is disadvantageous for potential applications of nanophotonic devices. Surface plasmon resonance (SPR) has been proposed to enhance the photonic SHE. In this paper, by covering the heterostructu...

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Main Authors: Qingkai Wang, Xing Jiang, Xi Wang, Xiaoyu Dai, Yuanjiang Xiang
Format: Article
Language:English
Published: IEEE 2017-01-01
Series:IEEE Photonics Journal
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8064726/
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spelling doaj-a5ae2e76f8b7488488629f1e285fc3f92021-03-29T17:44:04ZengIEEEIEEE Photonics Journal1943-06552017-01-019611010.1109/JPHOT.2017.27619898064726Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 HeterostructureQingkai Wang0https://orcid.org/0000-0002-3594-8892Xing Jiang1Xi Wang2Xiaoyu Dai3https://orcid.org/0000-0002-0180-8357Yuanjiang Xiang4https://orcid.org/0000-0002-7225-5411SZU-NUS Collaborative Innovation Center for Optoelectronic Science & Technology, Guangdong Engineering Technology Research Center for 2D Material Information Function Devices and Systems, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, ChinaSZU-NUS Collaborative Innovation Center for Optoelectronic Science & Technology, Guangdong Engineering Technology Research Center for 2D Material Information Function Devices and Systems, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, ChinaSZU-NUS Collaborative Innovation Center for Optoelectronic Science & Technology, Guangdong Engineering Technology Research Center for 2D Material Information Function Devices and Systems, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, ChinaSZU-NUS Collaborative Innovation Center for Optoelectronic Science & Technology, Guangdong Engineering Technology Research Center for 2D Material Information Function Devices and Systems, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, ChinaSZU-NUS Collaborative Innovation Center for Optoelectronic Science & Technology, Guangdong Engineering Technology Research Center for 2D Material Information Function Devices and Systems, College of Optoelectronic Engineering, Shenzhen University, Shenzhen, ChinaDue to the weak spin-orbit interaction, the photonic spin Hall effect (SHE) is generally very weak, which is disadvantageous for potential applications of nanophotonic devices. Surface plasmon resonance (SPR) has been proposed to enhance the photonic SHE. In this paper, by covering the heterostructure material composed of graphene and molybdenum sulfide (MoS<sub>2</sub>) on the SPR structure, it is demonstrated that the two-dimensional (2-D) material heterostructure can effectively enhance the photonic SHE. The transverse shift of light beam in the heterostructure is larger than those in SPR structure due to the larger refractive index gradient in the heterostructure. The maximum transverse shift can be up to 27.5 &#x03BC;m under the optimized parameters, which is much larger than the previously reported values. This interesting phenomenon is attributed to the larger light absorption and hence the refractive index variation gradient of graphene/MoS<sub>2</sub> heterostructure. These findings provide us with a new way to modulate the photonic SHE, and also establish foundation for developing nanophotonic devices based on 2-D nanomaterials heterostructure.https://ieeexplore.ieee.org/document/8064726/Photonic spin Hall effectspin-dependent splittingtwo-dimensional nanomaterialsheterostructure.
collection DOAJ
language English
format Article
sources DOAJ
author Qingkai Wang
Xing Jiang
Xi Wang
Xiaoyu Dai
Yuanjiang Xiang
spellingShingle Qingkai Wang
Xing Jiang
Xi Wang
Xiaoyu Dai
Yuanjiang Xiang
Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure
IEEE Photonics Journal
Photonic spin Hall effect
spin-dependent splitting
two-dimensional nanomaterials
heterostructure.
author_facet Qingkai Wang
Xing Jiang
Xi Wang
Xiaoyu Dai
Yuanjiang Xiang
author_sort Qingkai Wang
title Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure
title_short Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure
title_full Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure
title_fullStr Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure
title_full_unstemmed Enhancing Photonic Spin Hall Effect in the Surface Plasmon Resonance Structure Covered by the Graphene–MoS2 Heterostructure
title_sort enhancing photonic spin hall effect in the surface plasmon resonance structure covered by the graphene–mos2 heterostructure
publisher IEEE
series IEEE Photonics Journal
issn 1943-0655
publishDate 2017-01-01
description Due to the weak spin-orbit interaction, the photonic spin Hall effect (SHE) is generally very weak, which is disadvantageous for potential applications of nanophotonic devices. Surface plasmon resonance (SPR) has been proposed to enhance the photonic SHE. In this paper, by covering the heterostructure material composed of graphene and molybdenum sulfide (MoS<sub>2</sub>) on the SPR structure, it is demonstrated that the two-dimensional (2-D) material heterostructure can effectively enhance the photonic SHE. The transverse shift of light beam in the heterostructure is larger than those in SPR structure due to the larger refractive index gradient in the heterostructure. The maximum transverse shift can be up to 27.5 &#x03BC;m under the optimized parameters, which is much larger than the previously reported values. This interesting phenomenon is attributed to the larger light absorption and hence the refractive index variation gradient of graphene/MoS<sub>2</sub> heterostructure. These findings provide us with a new way to modulate the photonic SHE, and also establish foundation for developing nanophotonic devices based on 2-D nanomaterials heterostructure.
topic Photonic spin Hall effect
spin-dependent splitting
two-dimensional nanomaterials
heterostructure.
url https://ieeexplore.ieee.org/document/8064726/
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AT xingjiang enhancingphotonicspinhalleffectinthesurfaceplasmonresonancestructurecoveredbythegraphenemos2heterostructure
AT xiwang enhancingphotonicspinhalleffectinthesurfaceplasmonresonancestructurecoveredbythegraphenemos2heterostructure
AT xiaoyudai enhancingphotonicspinhalleffectinthesurfaceplasmonresonancestructurecoveredbythegraphenemos2heterostructure
AT yuanjiangxiang enhancingphotonicspinhalleffectinthesurfaceplasmonresonancestructurecoveredbythegraphenemos2heterostructure
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