Volatile Ultrafast Switching at Multilevel Nonvolatile States of Phase Change Material for Active Flexible Terahertz Metadevices

Phase change materials provide unique reconfigurable properties for photonic applications that mainly arise from their exotic characteristic to reversibly switch between the amorphous and crystalline nonvolatile phases. Optical pulse based reversible switching of nonvolatile phases is exploited in v...

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Veröffentlicht in:Advanced functional materials 2021-04, Vol.31 (17), p.n/a
Hauptverfasser: Pitchappa, Prakash, Kumar, Abhishek, Prakash, Saurav, Jani, Hariom, Medwal, Rohit, Mishra, Mayank, Rawat, Rajdeep Singh, Venkatesan, Thirumalai, Wang, Nan, Singh, Ranjan
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container_issue 17
container_start_page
container_title Advanced functional materials
container_volume 31
creator Pitchappa, Prakash
Kumar, Abhishek
Prakash, Saurav
Jani, Hariom
Medwal, Rohit
Mishra, Mayank
Rawat, Rajdeep Singh
Venkatesan, Thirumalai
Wang, Nan
Singh, Ranjan
description Phase change materials provide unique reconfigurable properties for photonic applications that mainly arise from their exotic characteristic to reversibly switch between the amorphous and crystalline nonvolatile phases. Optical pulse based reversible switching of nonvolatile phases is exploited in various nanophotonic devices. However, large area reversible switching is extremely challenging and has hindered its translation into a technologically significant terahertz spectral domain. Here, this limitation is circumvented by exploiting the semiconducting nature of germanium antimony telluride (GST) to achieve dynamic terahertz control at picosecond timescales. It is also shown that the ultrafast response can be actively altered by changing the crystallographic phase of GST.  The ease of fabrication of phase change materials allows for the realization of a variable ultrafast terahertz modulator on a flexible platform. The rich properties of phase change materials combined with the diverse functionalities of metamaterials and all‐optical ultrafast control enables an ideal platform for design of efficient terahertz communication devices, terahertz neuromorphic photonics, and smart sensor systems. All‐optical control of phase change material (PCM) integrated metamaterial allows for both multilevel nonvolatile and ultrafast volatile switching of terahertz resonances. At suprathreshold stimulus, phase change in the PCM allows for multilevel nonvolatile states. At sub‐threshold stimulus, the semiconducting nature of variable PCM phases provide unique ultrafast volatile states. Thus, optical reconfiguration of PCM metamaterial enables multifunctional terahertz wave manipulation.
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source Wiley Online Library Journals Frontfile Complete
subjects Antimony
Antimony telluride
Crystallography
Electronic devices
Germanium
Materials science
Metamaterials
multifunctional metamaterials
optical control
Phase change materials
Photonics
reconfigurable metadevices
Smart sensors
Switching
terahertz
Thermal energy
title Volatile Ultrafast Switching at Multilevel Nonvolatile States of Phase Change Material for Active Flexible Terahertz Metadevices
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