Graphene-based Photodetector with Engineered Hot-Carrier Cooling Dynamics

Abstract Graphene has emerged as a promising material for integration into silicon photonics, owing to its ultrafast and broadband photoresponse without the need for an external bias voltage. This photoresponse relies on the photo-thermoelectric effect created by hot carriers. A key factor underlying the performance of graphene photodetectors is the cooling dynamics of these hot carriers. In this work, we engineer these dynamics in a WSe 2 -graphene-WSe 2 waveguide-integrated photodetector. In particular, by introducing proximity screening by a nearby graphite layer to this structure, we prolong the hot-carrier cooling time, leading to an enhanced photoresponse. We characterize the cooling dynamics under continuouswave laser excitation by employing a photomixing technique, revealing an increase in the cooling time by up to a factor of four. Direct photoresponse measurements show that the internal photoresponsivity improves by approximately 50%. Together, these results demonstrate the potential of proximity screening to enhance the performance of graphenebased photodetectors on an integrated photonics platform.

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Publication Details

Journal
2D Materials
Published
2026-09-14
DOI
https://doi.org/10.1088/2053-1583/aea6ef
Primary Topic
2D Materials and Applications
Type
article
Field-Weighted Citation Impact
0.00

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Graphene-based Photodetector with Engineered Hot-Carrier Cooling Dynamics

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Graphene-based Photodetector with Engineered Hot-Carrier Cooling Dynamics

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article en

Abstract

Abstract Graphene has emerged as a promising material for integration into silicon photonics, owing to its ultrafast and broadband photoresponse without the need for an external bias voltage. This photoresponse relies on the photo-thermoelectric effect created by hot carriers. A key factor underlying the performance of graphene photodetectors is the cooling dynamics of these hot carriers. In this work, we engineer these dynamics in a WSe 2 -graphene-WSe 2 waveguide-integrated photodetector. In particular, by introducing proximity screening by a nearby graphite layer to this structure, we prolong the hot-carrier cooling time, leading to an enhanced photoresponse. We characterize the cooling dynamics under continuouswave laser excitation by employing a photomixing technique, revealing an increase in the cooling time by up to a factor of four. Direct photoresponse measurements show that the internal photoresponsivity improves by approximately 50%. Together, these results demonstrate the potential of proximity screening to enhance the performance of graphenebased photodetectors on an integrated photonics platform.

2D Materials
Utrecht University (NL), Imec the Netherlands (NL), Ghent University Hospital (BE), Ghent University (BE), Institut Català de Nanociència i Nanotecnologia (ES), Astronomy and Space (AU), Eindhoven University of Technology (NL), Manchester University (US)
Ministerio de Ciencia, Innovación y Universidades, Institut Català de Nanociència i Nanotecnologia, European Commission, Deutsche Forschungsgemeinschaft, Fonds Wetenschappelijk Onderzoek, Ministerio de Economía y Competitividad, Agencia Estatal de Investigación
Openalex Percentile: Top 67%
2D Materials and Applications
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