Hydrothermal Synthesis of Phase-Pure Sulvanite Cu3VS4 Nanoparticles
Daniel Munoz1, Rishabh Sahani1, Samuel Alexander Oyon1
1Department of Mechanical and Materials Engineering, Florida International University, Miami, Florida 33174, United States.
Abstract:
The successful synthesis of sulvanite nanoparticles has opened avenues for a wide range of new applications for these materials. Currently, the synthesis of sulvanite Cu3VS4 nanoparticles is accomplished via hot injection methods, which are nonscalable and lead to retention of ligands on the surface of the particles. This could prove detrimental to performance in advanced material applications as it requires subsequent purification or surface modifications of the nanoparticles to remove ligands. In this work, we demonstrate a sustainable method for producing ligand free-Cu3VS4 nanoparticles in a one-step procedure, utilizing a hydrothermal synthetic approach. A temperature study revealed that the optimal temperature of 220 °C required for producing pure Cu3VS4 nanoparticles is moderate and below the typical colloidal synthesis temperature, further pointing to the increased energy efficiency of the process. X-ray powder diffraction, Raman spectroscopy, and X-ray photoelectron spectroscopy validated the identity and crystallinity of Cu3VS4 nanoparticles synthesized through this method and demonstrated the absence of ligands on the surface of the material. Ultraviolet-visible spectroscopy was utilized to determine the material absorbance via diffuse reflectance revealing an indirect bandgap of 1.46 eV. Transmission electron microscopy analysis showed a narrow particle size distribution, with particle size below 30 nm. These results demonstrate the potential of a new approach to producing high-quality sulvanite Cu3VS4 nanoparticles for applications in optoelectronics, catalysis, and energy storage.


