Electrical detection of hyperbolic phonon-polaritons in heterostructures of graphene and boron nitride
arXiv:1705.10318 · doi:10.1038/s41699-017-0031-5
Abstract
Light properties in the mid-infrared can be controlled at a deep subwavelength scale using hyperbolic phonons-polaritons (HPPs) of hexagonal boron nitride (h-BN). While propagating as waveguided modes HPPs can concentrate the electric field in a chosen nano-volume. Such a behavior is at the heart of many applications including subdiffraction imaging and sensing. Here, we employ HPPs in heterostructures of h-BN and graphene as new nano-optoelectronic platform by uniting the benefits of efficient hot-carrier photoconversion in graphene and the hyperbolic nature of h-BN. We demonstrate electrical detection of HPPs by guiding them towards a graphene pn-junction. We shine a laser beam onto a gap in metal gates underneath the heterostructure, where the light is converted into HPPs. The HPPs then propagate as confined rays heating up the graphene leading to a strong photocurrent. This concept is exploited to boost the external responsivity of mid-infrared photodetectors, overcoming the limitation of graphene pn-junction detectors due to their small active area and weak absorption. Moreover this type of detector exhibits tunable frequency selectivity due to the HPPs, which combined with its high responsivity paves the way for efficient high-resolution mid-infrared imaging.
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Cited by in corpus (6)
- Plasmonic antenna coupling to hyperbolic phonon-polaritons for sensitive and fast mid-infrared photodetection with graphene
- Nano-imaging photoresponse in a moiré unit cell
- Hyperbolic enhancement of photocurrent patterns in minimally twisted bilayer graphene
- Nano-photocurrent mapping of local electronic structure in twisted bilayer graphene
- Electrical Spectroscopy of Polaritonic Nanoresonators
- Hyperbolic phonon-plasmon polaritons in a hBN-graphene van der Waals structure