Tunable nanophotonics enabled by chalcogenide phase‐change materials
Перестраиваемая нанофотоника на основе халькогенидных материалов с фазовым переходом
2020-02-01
SCID: 54.1/qy7q3zt6
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chalcogenide phase-change materialsdeep learningphotonic integrated circuitsreconfigurable metasurfacestunable nanophotonics
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Abstract (AI)
Abstract Nanophotonics has garnered intensive attention due to its unique capabilities in molding the flow of light in the subwavelength regime. Metasurfaces (MSs) and photonic integrated circuits (PICs) enable the realization of mass‐producible, cost‐effective, and efficient flat optical components for imaging, sensing, and communications. In order to enable nanophotonics with multipurpose functionalities, chalcogenide phase‐change materials (PCMs) have been introduced as a promising platform for tunable and reconfigurable nanophotonic frameworks. Integration of non‐volatile chalcogenide PCMs with unique properties such as drastic optical contrasts, fast switching speeds, and long‐term stability grants substantial reconfiguration to the more conventional static nanophotonic platforms. In this review, we discuss state‐of‐the‐art developments as well as emerging trends in tunable MSs and PICs using chalcogenide PCMs. We outline the unique material properties, structural transformation, and thermo‐optic effects of well‐established classes of chalcogenide PCMs. The emerging deep learning‐based approaches for the optimization of reconfigurable MSs and the analysis of light‐matter interactions are also discussed. The review is concluded by discussing existing challenges in the realization of adjustable nanophotonics and a perspective on the possible developments in this promising area.
Key Findings
1
Chalcogenide phase-change materials enable tunable and reconfigurable nanophotonic metasurfaces and photonic integrated circuits.
2
Deep learning is emerging as an approach for optimizing reconfigurable metasurfaces and analyzing light–matter interactions.
3
Key challenges remain in realizing adjustable nanophotonic systems, motivating further development of phase-change-material-enabled architectures.
4
The review covers material properties, structural transformations, and thermo-optic effects of established chalcogenide phase-change materials.
5
Their nonvolatile operation, strong optical contrast, fast switching, and long-term stability substantially expand conventional static nanophotonic platforms.
Research Object
Tunable and reconfigurable nanophotonic frameworks, including metasurfaces and photonic integrated circuits, enabled by chalcogenide phase-change materials
Research Subject
The material properties, structural transformations, thermo-optic effects, and reconfiguration capabilities of chalcogenide phase-change materials in tunable metasurfaces and photonic integrated circuits
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2020-02-01
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References available in scid.ai6
Broadband transparent optical phase change materials for high-performance nonvolatile photonics2019
Miniature Multilevel Optical Memristive Switch Using Phase Change Material2019
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Thermal camouflage based on the phase-changing material GST2018
Deep-Learning-Enabled On-Demand Design of Chiral Metamaterials2018
GST-on-silicon hybrid nanophotonic integrated circuits: a non-volatile quasi-continuously reprogrammable platform2018