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Layer‐Dependent Electronic and Optical Properties of 2D Black Phosphorus: Fundamentals and Engineering

Guowei Zhang, Shenyang Huang, Fanjie Wang, Hugen Yan

2021Laser & Photonics Review57 citationsDOI

Abstract

Abstract In 2D materials, the quantum confinement and van der Waals‐type interlayer interactions largely govern the fundamental electronic and optical properties, and the dielectric screening plays a dominant role in the excitonic properties. This suggests strongly layer‐dependent properties and a central topic is to characterize and control the interlayer interactions in 2D materials and heterostructures. Black phosphorus is an emerging 2D semiconductor with unusually strong interlayer interactions and widely tunable direct bandgaps from the monolayer to the bulk, offering an ideal platform to probe the layer‐dependent properties and the crossover from 2D to 3D (i.e., the scaling effects). In this review, a comprehensive and thorough summary of the fundamental physical properties of black phosphorus is presented, with a special focus on the layer‐dependence character, including the electronic band structures, optical absorption and photoluminescence, and excitonic properties, as well as the band structure engineering by means of electrical gating, strain, and electrochemical intercalation. Finally, an outlook is given for the future research.

Topics & Concepts

PhosphoreneSemiconductorvan der Waals forceMonolayerMaterials sciencePhotoluminescenceHeterojunctionOptoelectronicsDielectricGrapheneBand gapBlack phosphorusDirect and indirect band gapsNanotechnologyCondensed matter physicsChemical physicsChemistryPhysicsMoleculeOrganic chemistry2D Materials and ApplicationsMXene and MAX Phase MaterialsPerovskite Materials and Applications
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