1. Solution-Processed Two-Dimensional Ultrathin InSe Nanosheets
- Author
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Vera Lebedeva, Jannika Lauth, Horst Weller, Mahdi Samadi Khoshkhoo, Marcus Scheele, Friederieke E. S. Gorris, Thomas Chassé, Andreas Kornowski, Christian Klinke, Andreas Meyer, and Wiebke Friedrich
- Subjects
Materials science ,Band gap ,Scattering ,Chalcogenide ,General Chemical Engineering ,Nanotechnology ,02 engineering and technology ,General Chemistry ,Crystal structure ,010402 general chemistry ,021001 nanoscience & nanotechnology ,01 natural sciences ,0104 chemical sciences ,Characterization (materials science) ,chemistry.chemical_compound ,X-ray photoelectron spectroscopy ,Transition metal ,chemistry ,Materials Chemistry ,Lamellar structure ,0210 nano-technology - Abstract
The rise of two-dimensional (2D) graphene-cognated crystals with nonzero band gaps like transition metal dichalcogenides has led to a rapidly increasing interest in their dimensionality-dependent anisotropic properties, which bear high potential for ultrathin electronics. 2D crystals of the III–VI metal chalcogenide InSe represent a new kind of material class predestined for the use in optoelectronic applications as highly responsive photodetectors and field-effect transistors. We present a solution-processable method for 2D ultrathin InSe nanosheets (≤5 nm with ligands, lateral sizes up to ∼800 μm) with a detailed characterization of the sheet formation by a lamellar ligand templated growth. Optical and electrical transport properties, as well as in depth analysis of the crystal structure and stoichiometry of the colloidal nanosheets by electron and atomic force microscopy, X-ray photoelectron spectroscopy, and scattering methods complete this comprehensive study on a wet-chemical alternative to produce ...
- Published
- 2016
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