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  5. Fully printed zero-static power MoS2 switch coded reconfigurable graphene metasurface for RF/microwave electromagnetic wave manipulation and control

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Article
English
2024

Fully printed zero-static power MoS2 switch coded reconfigurable graphene metasurface for RF/microwave electromagnetic wave manipulation and control

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0 Files

English
2024
Nature Communications
Vol 15 (1)
DOI: 10.1038/s41467-024-54900-z

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Konstantin ‘kostya’  Novoselov
Konstantin ‘kostya’ Novoselov

The University of Manchester

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Xiao-Yu Xiao
Zixing Peng
Zirui Zhang
+8 more

Abstract

Reduction of power consumption is the key target for modern electronic devices. To this end, a lot of attention is paid to zero-static power switches, being able to change their state between highly resistive and highly conductive and remain in this state even in the absence of external voltage. Still, the implementation of such switches is slow because of compatibility issues of new materials with CMOS technology. At the same time, printable technology enables low-cost processes at ambient temperature and integration of devices onto flexible substrates. Here we demonstrate that printed Ag/MoS 2 /Ag heterostructures can be used as zero-static power switches in radiofrequency/microwave spectrum and fully-integrated reconfigurable metasurfaces. Combined with graphene, our printed platform enables reconfigurable metasurface for electromagnetic wave manipulation and control for wireless communications, sensing, and holography. In addition, it is also demonstrated that the localised MoS 2 phase change may have promoted Ag diffusion in forming conductive filaments.

How to cite this publication

Xiao-Yu Xiao, Zixing Peng, Zirui Zhang, Xinyao Zhou, Xuzhao Liu, Yang Liu, Jingjing Wang, Haiyu Li, Konstantin ‘kostya’ Novoselov, Cinzia Casiraghi, Zhirun Hu (2024). Fully printed zero-static power MoS2 switch coded reconfigurable graphene metasurface for RF/microwave electromagnetic wave manipulation and control. Nature Communications, 15(1), DOI: 10.1038/s41467-024-54900-z.

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Publication Details

Type

Article

Year

2024

Authors

11

Datasets

0

Total Files

0

Language

English

Journal

Nature Communications

DOI

10.1038/s41467-024-54900-z

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