Optical microscope based universal parameter for identifying layer number in two-dimensional materials
arXiv:2204.12745 · doi:10.1021/acsnano.2c04833
Abstract
Optical contrast is the most common preliminary method to identify layer number of two-dimensional (2D) materials, but is seldom used as a confirmatory technique. We explain the reason for variation of optical contrast between imaging systems. We introduce a universal method to quantify the layer number using the RGB (red-green-blue) and RAW optical images. For RGB images, the slope of 2D flake (MoS2, WSe2, graphene) intensity vs. substrate intensity is extracted from optical images with varying lamp power. The intensity slope identifies layer number and is system independent. For RAW images, intensity slopes and intensity ratios are completely system and intensity independent. Intensity slope (for RGB) and intensity ratio (for RAW) are thus universal parameters for identifying layer number. A Fresnel-reflectance-based optical model provides an excellent match with experiments. Further, we have created a MATLAB-based graphical user interface that can identify layer number rapidly. This technique is expected to accelerate the preparation of heterostructures, and fulfil a prolonged need for universal optical contrast method.
References in corpus (11)
- Anomalous Lattice Vibrations of Single and Few-Layer MoS2
- High Performance Single Layered WSe2 p-FETs with Chemically Doped Contacts
- Making graphene visible
- Sub-nanoscale Temperature, Magnetic Field and Pressure sensing with Spin Centers in 2D hexagonal Boron Nitride
- Irradiation of Nanostrained Monolayer WSe for Site-Controlled Single-Photon Emission up to 150 K
- High Photovoltaic Quantum Efficiency in Ultrathin van der Waals Heterostructures
- Light-Matter Coupling in Scalable Van der Waals Superlattices
- Moiré and beyond in transition metal dichalcogenide twisted bilayers
- Self-Hybridized Polaritonic Emission from Layered Perovskites
- Optical read-out of Coulomb staircases in a moiré superlattice via trapped interlayer trions
- Highly Accurate Determination of Heterogeneously Stacked Van-der-Waals Materials by Optical Microspectroscopy