Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation

abstract: Optical metasurfaces, i.e. artificially engineered arrays of subwavelength building blocks supporting abrupt and substantial light confinement, was employed to demonstrate a novel generation of devices for circularly polarized detection, full-Stokes polarimetry and all-optical modulation w...

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Other Authors: Basiri, Ali (Author)
Format: Doctoral Thesis
Language:English
Published: 2020
Subjects:
Online Access:http://hdl.handle.net/2286/R.I.62822
id ndltd-asu.edu-item-62822
record_format oai_dc
spelling ndltd-asu.edu-item-628222020-12-09T05:00:43Z Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation abstract: Optical metasurfaces, i.e. artificially engineered arrays of subwavelength building blocks supporting abrupt and substantial light confinement, was employed to demonstrate a novel generation of devices for circularly polarized detection, full-Stokes polarimetry and all-optical modulation with ultra-compact footprint and chip-integrability. Optical chirality is essential for generation, manipulation and detection of circularly polarized light (CPL), thus finds many applications in quantum computing, communication, spectroscopy, biomedical diagnosis, imaging and sensing. Compared to natural chiral materials, chiral metamaterials and metasurfaces enable much stronger chirality on subwavelength scale; therefore, they are ideal for device miniaturization and system integration. However, they are usually associated with low performance due to limited fabrication tolerance and high dissipation mainly caused by plasmonic materials. Here, a bio-inspired submicron-thick chiral metamaterial structure was designed and demonstrated experimentally with high contrast (extinction ratio >35) detection of CPL with different handedness and high efficiency (>80%) of the overall device. Furthermore, integration of left- and right-handed CPL detection units with nanograting linear polarization filters enabled full-Stokes polarimetry of arbitrarily input polarization states with high accuracy and very low insertion loss, all on a submillimeter single chip. These unprecedented highly efficient and high extinction ratio devices pave the way for on-chip polarimetric measurements. All-optical modulation is widely used for optical interconnects, communication, information processing, and ultrafast spectroscopy. Yet, there’s deficiency of ultrafast, compact and energy-efficient solutions all in one device. Here, all-optical modulation of light in the near- and mid-infrared regimes were experimentally demonstrated based on a graphene-integrated plasmonic nanoantenna array. The remarkable feature of the device design is its simultaneous near-field enhancement for pump and probe (signal) beams, owing to the localized surface plasmon resonance excitation, while preserving the ultrafast photocarrier relaxation in graphene. Hence, a distinct modulation at 1560nm with record-low pump fluence (<8μJ/cm^2) was reported with ~1ps response time. Besides, relying on broadband interaction of graphene with incident light, a first-time demonstration of graphene-based all-optical modulation in mid-infrared spectral region (6-7μm) was reported based on the above double-enhancement design concept. Relying on the tunability of metasurface design, the proposed device can be used for ultrafast optical modulation from near-infrared to terahertz regime. Dissertation/Thesis Basiri, Ali (Author) Yao, Yu (Advisor) Ning, Cun-Zheng (Committee member) Palais, Joseph (Committee member) Zhang, Yong-Hang (Committee member) Arizona State University (Publisher) Engineering Optics Full-Stokes Polarimetry Graphene Nanophotonics Optical metasurfaces Optical Modulators Optoelectronics eng 142 pages Doctoral Dissertation Electrical Engineering 2020 Doctoral Dissertation http://hdl.handle.net/2286/R.I.62822 http://rightsstatements.org/vocab/InC/1.0/ 2020
collection NDLTD
language English
format Doctoral Thesis
sources NDLTD
topic Engineering
Optics
Full-Stokes Polarimetry
Graphene
Nanophotonics
Optical metasurfaces
Optical Modulators
Optoelectronics
spellingShingle Engineering
Optics
Full-Stokes Polarimetry
Graphene
Nanophotonics
Optical metasurfaces
Optical Modulators
Optoelectronics
Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation
description abstract: Optical metasurfaces, i.e. artificially engineered arrays of subwavelength building blocks supporting abrupt and substantial light confinement, was employed to demonstrate a novel generation of devices for circularly polarized detection, full-Stokes polarimetry and all-optical modulation with ultra-compact footprint and chip-integrability. Optical chirality is essential for generation, manipulation and detection of circularly polarized light (CPL), thus finds many applications in quantum computing, communication, spectroscopy, biomedical diagnosis, imaging and sensing. Compared to natural chiral materials, chiral metamaterials and metasurfaces enable much stronger chirality on subwavelength scale; therefore, they are ideal for device miniaturization and system integration. However, they are usually associated with low performance due to limited fabrication tolerance and high dissipation mainly caused by plasmonic materials. Here, a bio-inspired submicron-thick chiral metamaterial structure was designed and demonstrated experimentally with high contrast (extinction ratio >35) detection of CPL with different handedness and high efficiency (>80%) of the overall device. Furthermore, integration of left- and right-handed CPL detection units with nanograting linear polarization filters enabled full-Stokes polarimetry of arbitrarily input polarization states with high accuracy and very low insertion loss, all on a submillimeter single chip. These unprecedented highly efficient and high extinction ratio devices pave the way for on-chip polarimetric measurements. All-optical modulation is widely used for optical interconnects, communication, information processing, and ultrafast spectroscopy. Yet, there’s deficiency of ultrafast, compact and energy-efficient solutions all in one device. Here, all-optical modulation of light in the near- and mid-infrared regimes were experimentally demonstrated based on a graphene-integrated plasmonic nanoantenna array. The remarkable feature of the device design is its simultaneous near-field enhancement for pump and probe (signal) beams, owing to the localized surface plasmon resonance excitation, while preserving the ultrafast photocarrier relaxation in graphene. Hence, a distinct modulation at 1560nm with record-low pump fluence (<8μJ/cm^2) was reported with ~1ps response time. Besides, relying on broadband interaction of graphene with incident light, a first-time demonstration of graphene-based all-optical modulation in mid-infrared spectral region (6-7μm) was reported based on the above double-enhancement design concept. Relying on the tunability of metasurface design, the proposed device can be used for ultrafast optical modulation from near-infrared to terahertz regime. === Dissertation/Thesis === Doctoral Dissertation Electrical Engineering 2020
author2 Basiri, Ali (Author)
author_facet Basiri, Ali (Author)
title Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation
title_short Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation
title_full Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation
title_fullStr Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation
title_full_unstemmed Metasurface-Based Optoelectronic Devices for Polarization Detection and Ultrafast Optical Modulation
title_sort metasurface-based optoelectronic devices for polarization detection and ultrafast optical modulation
publishDate 2020
url http://hdl.handle.net/2286/R.I.62822
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