Thermal behavior in oxidative and pyrolysis conditions and characterization of some metal p-aminobenzoate compounds using TG–DTA, EGA and DSC-photovisual system

•Thermal and pyrolysis behavior of compounds has been studied by TGA/DSC-FTIR.•DSC-photovisual system confirmed the physical phenomena for the zinc compound.•The main gaseous products identified were H2O, Aniline, CO, CO2, N2O and NH3.•IR data suggest different modes of coordination for the synthesi...

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Published in:Journal of analytical and applied pyrolysis Vol. 128; pp. 261 - 267
Main Authors: Teixeira, J.A., Nunes, W.D.G., Fernandes, R.P., do Nascimento, A.L.C.S., Caires, F.J., Ionashiro, M.
Format: Journal Article
Language:English
Published: Elsevier B.V 01-11-2017
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Abstract •Thermal and pyrolysis behavior of compounds has been studied by TGA/DSC-FTIR.•DSC-photovisual system confirmed the physical phenomena for the zinc compound.•The main gaseous products identified were H2O, Aniline, CO, CO2, N2O and NH3.•IR data suggest different modes of coordination for the synthesized compounds. Synthesis, thermal and spectroscopic study of solid bivalent transition metal compounds of Mn(II), Co(II), Ni(II), Cu(II) and Zn(II) with p-aminobenzoate as ligand were performed. The thermal study was performed in oxidative and pyrolysis conditions, using the thermoanalytical techniques: Simultaneous thermogravimetry and differential thermal analysis (TG-DTA), differential scanning calorimetry (DSC), DSC-photovisual system and evolved gas analysis (EGA) by TG/DSC-FTIR. Infrared absorption spectroscopy (FTIR) and powder X-ray diffractometry (PXRD) were employing in the spectroscopic study. The general formula M(L)2.nH2O has been established by TG-DTA, elemental analysis and complexometry with EDTA, where M represents Mn, Co, Ni, Cu and Zn, L is p-aminobenzoate and n=0 (Mn, Co), 1 (Ni), 1.5 (Zn), 2 (Cu). In oxidative condition (dry air atmosphere), the thermal decomposition occurred in one, two or three steps, with formation of the respective oxides (Mn3O4, CoO, NiO, CuO and ZnO). Under pyrolysis condition (N2 atmosphere), the thermal decomposition occurred in three or four steps, with mass loss still being observed up to 1000°C. DSC-photovisual system curves provided information about of the dehydration and phase transformation processes, as well as their enthalpies. The EGA data allowed the identification of gaseous products evolved during pyrolysis and oxidative decomposition. The results of the FTIR and PXRD also provided information on the ligand’s denticity and crystallinity of the compounds.
AbstractList •Thermal and pyrolysis behavior of compounds has been studied by TGA/DSC-FTIR.•DSC-photovisual system confirmed the physical phenomena for the zinc compound.•The main gaseous products identified were H2O, Aniline, CO, CO2, N2O and NH3.•IR data suggest different modes of coordination for the synthesized compounds. Synthesis, thermal and spectroscopic study of solid bivalent transition metal compounds of Mn(II), Co(II), Ni(II), Cu(II) and Zn(II) with p-aminobenzoate as ligand were performed. The thermal study was performed in oxidative and pyrolysis conditions, using the thermoanalytical techniques: Simultaneous thermogravimetry and differential thermal analysis (TG-DTA), differential scanning calorimetry (DSC), DSC-photovisual system and evolved gas analysis (EGA) by TG/DSC-FTIR. Infrared absorption spectroscopy (FTIR) and powder X-ray diffractometry (PXRD) were employing in the spectroscopic study. The general formula M(L)2.nH2O has been established by TG-DTA, elemental analysis and complexometry with EDTA, where M represents Mn, Co, Ni, Cu and Zn, L is p-aminobenzoate and n=0 (Mn, Co), 1 (Ni), 1.5 (Zn), 2 (Cu). In oxidative condition (dry air atmosphere), the thermal decomposition occurred in one, two or three steps, with formation of the respective oxides (Mn3O4, CoO, NiO, CuO and ZnO). Under pyrolysis condition (N2 atmosphere), the thermal decomposition occurred in three or four steps, with mass loss still being observed up to 1000°C. DSC-photovisual system curves provided information about of the dehydration and phase transformation processes, as well as their enthalpies. The EGA data allowed the identification of gaseous products evolved during pyrolysis and oxidative decomposition. The results of the FTIR and PXRD also provided information on the ligand’s denticity and crystallinity of the compounds.
Author Nunes, W.D.G.
Teixeira, J.A.
Fernandes, R.P.
do Nascimento, A.L.C.S.
Ionashiro, M.
Caires, F.J.
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  givenname: W.D.G.
  surname: Nunes
  fullname: Nunes, W.D.G.
  organization: São Paulo State University (UNESP), Institute of Chemistry, Araraquara, SP, Brazil
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  surname: Fernandes
  fullname: Fernandes, R.P.
  organization: São Paulo State University (UNESP), Institute of Chemistry, Araraquara, SP, Brazil
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  givenname: A.L.C.S.
  surname: do Nascimento
  fullname: do Nascimento, A.L.C.S.
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  surname: Caires
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  organization: São Paulo State University (UNESP), School of Science, Bauru, SP, Brazil
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  givenname: M.
  surname: Ionashiro
  fullname: Ionashiro, M.
  email: massaoi@yahoo.com.br
  organization: São Paulo State University (UNESP), Institute of Chemistry, Araraquara, SP, Brazil
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Keywords Bivalent transition metals
Pyrolysis
Evolved gases
Thermal behavior
p-aminobenzoates
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Snippet •Thermal and pyrolysis behavior of compounds has been studied by TGA/DSC-FTIR.•DSC-photovisual system confirmed the physical phenomena for the zinc...
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SubjectTerms Bivalent transition metals
Evolved gases
p-aminobenzoates
Pyrolysis
Thermal behavior
Title Thermal behavior in oxidative and pyrolysis conditions and characterization of some metal p-aminobenzoate compounds using TG–DTA, EGA and DSC-photovisual system
URI https://dx.doi.org/10.1016/j.jaap.2017.10.002
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