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  5. Infrared photodetection in graphene-based heterostructures: bolometric and thermoelectric effects at the tunneling barrier

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Article
English
2024

Infrared photodetection in graphene-based heterostructures: bolometric and thermoelectric effects at the tunneling barrier

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English
2024
npj 2D Materials and Applications
Vol 8 (1)
DOI: 10.1038/s41699-024-00470-z

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Konstantin ‘kostya’  Novoselov
Konstantin ‘kostya’ Novoselov

The University of Manchester

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Dmitry Mylnikov
M. A. Kashchenko
Kirill Kapralov
+7 more

Abstract

Graphene/hBN/graphene tunnel devices offer promise as sensitive mid-infrared photodetectors but the microscopic origin underlying the photoresponse in them remains elusive. In this work, we investigated the photocurrent generation in graphene/hBN/graphene tunnel structures with localized defect states under mid-IR illumination. We demonstrate that the photocurrent in these devices is proportional to the second derivative of the tunnel current with respect to the bias voltage, peaking during tunneling through the hBN impurity level. We revealed that the origin of the photocurrent generation lies in the change of the tunneling probability upon radiation-induced electron heating in graphene layers, in agreement with the theoretical model that we developed. Finally, we show that at a finite bias voltage, the photocurrent is proportional to either of the graphene layers heating under the illumination, while at zero bias, it is proportional to the heating difference. Thus, the photocurrent in such devices can be used for accurate measurements of the electronic temperature, providing a convenient alternative to Johnson noise thermometry.

How to cite this publication

Dmitry Mylnikov, M. A. Kashchenko, Kirill Kapralov, Davit Ghazaryan, Е. Е. Вдовин, С. В. Морозов, Konstantin ‘kostya’ Novoselov, D. A. Bandurin, A. I. Chernov, Dmitry Svintsov (2024). Infrared photodetection in graphene-based heterostructures: bolometric and thermoelectric effects at the tunneling barrier. npj 2D Materials and Applications, 8(1), DOI: 10.1038/s41699-024-00470-z.

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Publication Details

Type

Article

Year

2024

Authors

10

Datasets

0

Total Files

0

Language

English

Journal

npj 2D Materials and Applications

DOI

10.1038/s41699-024-00470-z

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