DOI: 10.1002/adfm.78696 ISSN: 1616-301X

Reconstructive Polarimetry With Scalable Graphene–Metal Infrared Photodetectors

Valentin Semkin, Kirill Kapralov, Ilya Mazurenko, Mikhail Kashchenko, Alexander Morozov, Yakov Matyushkin, Alena Nikolskaya, Vladislav Myltsev, Dmitry Mylnikov, Li Lin, Alexey Bocharov, Dmitry Svintsov

ABSTRACT

Recent advent of smart photodetectors, where in situ tuning of responsivity enables the reconstruction of light intensity, polarization, and spectrum by a single device, has revolutionized the field of optoelectronics. So far, most such reconstructive detectors were realized with non‐scalable technology of van der Waals stacking. Here, we demonstrate the infrared reconstructive polarimetry with photodetectors based on conventional gated graphene–metal junctions. The reconstruction exploits the gate tuning of polarization contrast, which enables the determination of both infrared power and polarization angle from photovoltage measurements at two different gate voltages. The physics enabling the polarimetry lies in polarization‐dependent shift of the electron hot spot near the contact, and the gate tuning of photosensitive barrier width. We further show the universality of polarization reconstruction, i.e. its feasibility with different geometries of the junction, and with graphene of different quality, from boron–nitride encapsulated flakes to the scalable chemical vapor deposited films.