Graphene-based Photodetector with Engineered Hot-Carrier Cooling Dynamics
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.
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Authors: Yishu Huang, Anand Nivedan, Florian Ludwig, Bohai Liu, Michiel Debaets, Hai I. Wang, Steven Brems, Alessandro Principi, Dries Van Thourhout, Christian Haffner, Aron W. Cummings, Klaas-Jan Tielrooij
Institutions: Ghent University, Ghent University Hospital, Institut Català de Nanociència i Nanotecnologia, Eindhoven University of Technology, Utrecht University, Manchester University, Astronomy and Space, Imec the Netherlands