Please use this identifier to cite or link to this item: http://nopr.niscpr.res.in/handle/123456789/68623
metadata.dc.identifier.doi: https://doi.org/10.56042/ijems.v33i03.25679
Title: Effect of molybdenum-based precursors on the morphological evolution of MoTe2 nanostructures prepared by a one-pot synthesis method
Authors: Kumar Yadav, Vinay
Singh Mehata, Mohan
Keywords: Hydrothermal;Molybdenum ditelluride (MoTe2);Nanostructures (NSs)
Issue Date: Jun-2026
Publisher: NIScPR-CSIR, India
Abstract: In this work, molybdenum ditelluride (MoTe2) nanostructures have been synthesized using a hydrothermal route with different precursors and investigated for their morphological, structural and optical properties. Field-emission scanning electron microscopic images have revealed different morphological growth patterns, including nanorods, agglomerated nanoparticles and stacked sheet/flake-like structures, demonstrating significant influence of precursors and temperature on morphology. High-resolution transmission electron microscopy further confirmed the polycrystalline nature of the synthesized MoTe₂ nanostructures. X-ray diffraction patterns have confirmed the existence of 1T and 2H phases of MoTe2, depending on the selection of molybdenum precursors. The average crystallite size, calculated using the Williamson-Hall plot to be 144, 91, 57 and 41 nm for NAMo-1, NAMo-2, NHMo-1 and NHMo-2, samples respectively. The active Ag and B2g modes have been confirmed by Raman spectra and characteristic Mo-Te and Mo-O vibration modes by Fouriertransform infrared spectra, further confirmed the formation of MoTe2 nanostructures. The precursor-dependent morphology has provided insights into the synthesis of phase-tunable nanostructures.
Page(s): 279-286
ISSN: 0975-1017 (Online) ; 0971-4588 (Print)
Appears in Collections:IJEMS Vol.33(03) June

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