The fields of layered material research, such as transition-metal dichalcogenides (TMDs), have demonstrated that the optical, electrical and mechanical properties strongly depend on the layer number N. Thus, efficient and accurate determination of N is the most crucial step before the associated device fabrication. An existing experimental technique using an optical microscope is the most widely used one to identify N. However, a critical drawback of this approach is that it relies on extensive laboratory experiences to estimate N; it requires a very time-consuming image-searching task assisted by human eyes and secondary measurements such as atomic force microscopy and Raman spectroscopy, which are necessary to ensure N. In this work, we i...
Identification of the number of graphene layers using an optical microscope images taken at various ...
We have clearly discriminated the single-, bilayer-, and multiple-layer graphene (<10 layers) on ...
2D materials like hexagonal boron nitride, graphene, and tungsten diselenide are widely utilized for...
Optical contrast is the most common preliminary method to identify layer number of two-dimensional (...
We report a rapid and cost-effective method for the identification of the thickness of twodimensiona...
Two-dimensional materials, e.g. graphene and molybdenum disulfide (MoS2), have attracted great inter...
The physical and electronic properties of ultrathin two-dimensional (2D) layered nanomaterials are h...
In recent times, two-dimensional (2D) materials have attracted significant attention and revolutioni...
For the investigation of 2D layered materials such as graphene, transition-metal dichalcogenides, bo...
Fast progress in chemical vapor deposition of graphene and other quasi-two-dimensional layered mater...
Layered, two-dimensional (2D) materials are promising for next-generation photonics devices. Typical...
Here, we propose a method to determine the thickness of the most common transition metal dichalcogen...
Single layers of two-dimensional atomic-layered materials, such as graphene–a single layer of graphi...
Practical applications of graphene require a reliable high-throughput method of graphene identificat...
An advanced and highly scalable approach for determining the number of layers of two-dimensional (2D...
Identification of the number of graphene layers using an optical microscope images taken at various ...
We have clearly discriminated the single-, bilayer-, and multiple-layer graphene (<10 layers) on ...
2D materials like hexagonal boron nitride, graphene, and tungsten diselenide are widely utilized for...
Optical contrast is the most common preliminary method to identify layer number of two-dimensional (...
We report a rapid and cost-effective method for the identification of the thickness of twodimensiona...
Two-dimensional materials, e.g. graphene and molybdenum disulfide (MoS2), have attracted great inter...
The physical and electronic properties of ultrathin two-dimensional (2D) layered nanomaterials are h...
In recent times, two-dimensional (2D) materials have attracted significant attention and revolutioni...
For the investigation of 2D layered materials such as graphene, transition-metal dichalcogenides, bo...
Fast progress in chemical vapor deposition of graphene and other quasi-two-dimensional layered mater...
Layered, two-dimensional (2D) materials are promising for next-generation photonics devices. Typical...
Here, we propose a method to determine the thickness of the most common transition metal dichalcogen...
Single layers of two-dimensional atomic-layered materials, such as graphene–a single layer of graphi...
Practical applications of graphene require a reliable high-throughput method of graphene identificat...
An advanced and highly scalable approach for determining the number of layers of two-dimensional (2D...
Identification of the number of graphene layers using an optical microscope images taken at various ...
We have clearly discriminated the single-, bilayer-, and multiple-layer graphene (<10 layers) on ...
2D materials like hexagonal boron nitride, graphene, and tungsten diselenide are widely utilized for...