Investigation of Band-Offsets at Monolayer-Multilayer MoS2 Junctions by Scanning Photocurrent Microscopy
arXiv:1503.08798 · doi:10.1021/nl504311p
Abstract
The thickness-dependent band structure of MoS2 implies that discontinuities in energy bands exist at the interface of monolayer (1L) and multilayer (ML) thin films. The characteristics of such heterojunctions are analyzed here using current versus voltage measurements, scanning photocurrent microscopy, and finite element simulations of charge carrier transport. Rectifying I-V curves are consistently observed between contacts on opposite sides of 1L-ML junctions, and a strong bias-dependent photocurrent is observed at the junction. Finite element device simulations with varying carrier concentrations and electron affinities show that a type II band alignment at single layer/multi-layer junctions reproduces both the rectifying electrical characteristics and the photocurrent response under bias. However, the zero-bias junction photocurrent and its energy dependence are not explained by conventional photovoltaic and photothermoelectric mechanisms, indicating the contributions of hot carriers.
5 figures plus supplement
References in corpus (10)
- Two Dimensional Atomic Crystals
- Atomically thin p-n junctions with van der Waals heterointerfaces
- Black Phosphorus-Monolayer MoS2 van der Waals Heterojunction P-N Diode
- Laser-thinning of MoS2: on demand generation of a single-layer semiconductor
- Large and tunable photo-thermoelectric effect in single-layer MoS2
- Electron-hole transport and photovoltaic effect in gated MoS2 Schottky junctions
- Visibility of dichalcogenide nanolayers
- Large Thermoelectricity via Variable Range Hopping in Chemical Vapor Deposition Grown Single-layer MoS2
- Thickness Scaling Effect on Interfacial Barrier and Electrical Contact to Two-Dimensional MoS2 Layers
- Unconventional Quantum Hall Effect and Tunable Spin Hall Effect in MoS2 Trilayers
Cited by in corpus (5)
- Van der Waals Materials for Atomically-Thin Photovoltaics: Promise and Outlook
- High Photovoltaic Quantum Efficiency in Ultrathin van der Waals Heterostructures
- Thickness Engineered Tunnel Field-Effect Transistors based on Phosphorene
- Photoresponse of atomically thin MoS2 layers and their planar heterojunctions
- Lateral heterostructures and one-dimensional interfaces in 2D transition metal dichalcogenides