Phase pure Ni3S2 and NiS from bis(N′-ethyl-N-piperazinylcarbodithioato-S,S′)–nickel(II) via solvent thermolysis and aerosol assisted chemical vapour deposition.

dc.creatorGervas, Charles
dc.creatorMlowe, Sixberth
dc.creatorAkerman, Matthew P
dc.creatorRevaprasadu, Neerish
dc.date2019-05-07T07:00:57Z
dc.date2019-05-07T07:00:57Z
dc.date2018
dc.date.accessioned2021-05-07T09:45:42Z
dc.date.available2021-05-07T09:45:42Z
dc.descriptionA bis(N′-ethyl-N-piperazinylcarbodithioato-S,S′)–nickel(II) complex was prepared and characterized using infrared spectroscopy, thermogravimetric and elemental analyses. The crystal X-ray structure for bis(N′-ethyl-N-piperazinylcarbodithioato-S,S′)–nickel(II) was determined. The complex was subsequently used as a single source precursor (SSP) for the synthesis of phase pure Ni3S2 and NiS nanoparticles and thin films via hot injection thermolysis and aerosol assisted chemical vapour deposition (AACVD) routes, respectively. For the hot injection thermolysis route, hexadecylamine (HDA) and oleylamine (OLA) were used as capping groups at varying temperatures. Chloroform was used as the solvent in the AACVD experiments. Powder X-ray revealed that the capping group does not change the phase of nanoparticles formed whereas the AACVD technique produced different phases. Variation of temperature did not affect the phase purity of the nanomaterials formed. The morphology of the thin films obtained via AACVD depended largely on the deposition temperature, whereas for the nanoparticles, temperature and the capping group had a significant impact.
dc.descriptionNational Research Foundation (NRF) South Africa through the South African Research Chair Initiative (SARChI)
dc.identifierhttp://hdl.handle.net/20.500.11810/5204
dc.identifier10.1039/C8NJ00092A
dc.identifier.urihttp://hdl.handle.net/20.500.11810/5204
dc.languageen
dc.publisherNew Journal of Chemistry
dc.titlePhase pure Ni3S2 and NiS from bis(N′-ethyl-N-piperazinylcarbodithioato-S,S′)–nickel(II) via solvent thermolysis and aerosol assisted chemical vapour deposition.
dc.typeJournal Article

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