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BP/MoS₂ Van Der Waals Heterojunctions for Self‐Powered Photoconduction

Adolfo Mazzotti, O. Durante, S. De Stefano, Loredana Viscardi, Aniello Pelella, Osamah Kharsah, Leon Daniel, Stephan Sleziona, Marika Schleberger, Antonio Di Bartolomeo

2025Advanced Optical Materials12 citationsDOIOpen Access PDF

Abstract

Abstract 2D materials can be combined without the need for lattice matching, leading to various van der Waals heterostructures with novel functionalities. Herein, it focuses on a vertical heterostructure made of thin black phosphorus (BP) over monolayer molybdenum disulfide (MoS 2 ) that is characterized using a four‐probe configuration. The device exhibits contact resistance negligible compared to the resistance of the BP/MoS 2 channel, rectifying current‐voltage (IV) characteristics, dominant n‐type conduction resulting from type II band alignment and field effect mobility ≈1 cm 2 V −1 s −1 limited by MoS 2 . An energy barrier at the BP/MoS 2 interface of 68 meV is estimated using IV measurements at different temperatures. Additionally, the BP/MoS 2 device exhibits fast photoresponse, conductance depending linearly on the incident light power, and photovoltaic effect, suggesting its suitability for self‐powered photodetection. The spectral response is nearly constant in the 450 − 600 nm range and declines for wavelengths above 600 nm, that is for light energies below the energy bandgap of MoS 2 . Both the short circuit current I sc and the open circuit voltage V oc show a dependence on the incident power and wavelength, with maximum values I sc ≈ 0.12 nA and V oc ≈ 75 mV under 126 µW incident white light power. These findings highlight the potential of BP/MoS₂ heterojunctions for optoelectronic applications.

Topics & Concepts

Materials scienceHeterojunctionOptoelectronicsvan der Waals forceMonolayerBand gapRayConductanceWavelengthPhotodetectionPhotodetectorCondensed matter physicsNanotechnologyPhysicsMoleculeQuantum mechanics2D Materials and ApplicationsMXene and MAX Phase MaterialsPerovskite Materials and Applications