Physico-Chemical and Electrochemical Characterizations of a Trachyte in the Far North Region of Cameroon for Possible Electroanalytical and Environmental Purposes

The trachyte which was the subject of this work was subjected to physicochemical and electrochemical characterizations. X-ray diffraction, Fourier transform infrared (FT-IR), X-ray fluorescence, EDX analysis, scanning electron microscopy, cyclic voltammetry, electrochemical impedance spectroscopy we...

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Published inJournal of inorganic and organometallic polymers and materials Vol. 31; no. 2; pp. 542 - 551
Main Authors Dai-Yang, Lemankréo, Pengou, Martin, Tcheumi, Hervé Leclerc, Nguihdama, Dawai, Wahabou, Abdoul, Ngatchou, Beaufils Ngana, Wamba, Odilon Romaric Tchio, Kouamo, Hervé Tchakouté, Nanseu-Njiki, Charles Péguy, Ngameni, Emmanuel
Format Journal Article
LanguageEnglish
Published New York Springer US 01.02.2021
Springer Nature B.V
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Abstract The trachyte which was the subject of this work was subjected to physicochemical and electrochemical characterizations. X-ray diffraction, Fourier transform infrared (FT-IR), X-ray fluorescence, EDX analysis, scanning electron microscopy, cyclic voltammetry, electrochemical impedance spectroscopy were used. The physicochemical characterization have indicated the presence of elements such as Albite (Na (AlSi 3 O 8 ); Microcline (K(AlSi 3 O 8 ); Muscovite (KAl 2 (Si 3 Al)O 10 (OH) 2 ) and Diopside Aluminum (Ca(MgFeAl)SiAl) 2 O 6 ). X-ray fluorescence revealed presence of certain chemical elements in the form of oxide (SiO 2 : 65.24 wt%; Al 2 O 3 : 15.49 wt%; Fe 2 O 3 : 5.31 wt%; Ca0: 0.02 wt%; MgO: 0.01 wt%; SO 3 : 0.03 wt%; Na 2 O: 3.45 wt%; K 2 O: 5.65 wt% and P 2 O 5 : 0.029 wt%). FTIR and EDX confirmed the results obtained by X-ray and X-ray fluorescence. Presence of quartz, particles of trachyte in the form of clusters of fine aggregates and platelets in the form of rods with irregular contours was confirmed by scanning electron microscopy. Electrochemical characterization showed that our material has affinity with K 3 Fe(CN) 6 and Ru(NH 3 ) 6 Cl 3 , but this affinity is much more pronounced with K 3 Fe(CN) 6 . Modifying glassy carbon electrode with a fine fraction of the trachyte significantly increased sensitivity of the electrode of these species. SiO 2 /Al 2 O 3 ratio confirmed mechanical resistance of our material and would predestine it in the manufacture of geopolymer binders. Sum% SiO 2  + % Al 2 O 3  + % Fe 2 O 3 greater than 70 wt% indicated possibility of using material as pozzolanic materials. High level of alumina, low content of alkaline elements (K 2 O, Na 2 O) allow the use of trachyte as a raw material for manufacture of refractory products. This information would allowed us to consider the use of our material for electroanalytical, industrial purposes.
AbstractList The trachyte which was the subject of this work was subjected to physicochemical and electrochemical characterizations. X-ray diffraction, Fourier transform infrared (FT-IR), X-ray fluorescence, EDX analysis, scanning electron microscopy, cyclic voltammetry, electrochemical impedance spectroscopy were used. The physicochemical characterization have indicated the presence of elements such as Albite (Na (AlSi 3 O 8 ); Microcline (K(AlSi 3 O 8 ); Muscovite (KAl 2 (Si 3 Al)O 10 (OH) 2 ) and Diopside Aluminum (Ca(MgFeAl)SiAl) 2 O 6 ). X-ray fluorescence revealed presence of certain chemical elements in the form of oxide (SiO 2 : 65.24 wt%; Al 2 O 3 : 15.49 wt%; Fe 2 O 3 : 5.31 wt%; Ca0: 0.02 wt%; MgO: 0.01 wt%; SO 3 : 0.03 wt%; Na 2 O: 3.45 wt%; K 2 O: 5.65 wt% and P 2 O 5 : 0.029 wt%). FTIR and EDX confirmed the results obtained by X-ray and X-ray fluorescence. Presence of quartz, particles of trachyte in the form of clusters of fine aggregates and platelets in the form of rods with irregular contours was confirmed by scanning electron microscopy. Electrochemical characterization showed that our material has affinity with K 3 Fe(CN) 6 and Ru(NH 3 ) 6 Cl 3 , but this affinity is much more pronounced with K 3 Fe(CN) 6 . Modifying glassy carbon electrode with a fine fraction of the trachyte significantly increased sensitivity of the electrode of these species. SiO 2 /Al 2 O 3 ratio confirmed mechanical resistance of our material and would predestine it in the manufacture of geopolymer binders. Sum% SiO 2  + % Al 2 O 3  + % Fe 2 O 3 greater than 70 wt% indicated possibility of using material as pozzolanic materials. High level of alumina, low content of alkaline elements (K 2 O, Na 2 O) allow the use of trachyte as a raw material for manufacture of refractory products. This information would allowed us to consider the use of our material for electroanalytical, industrial purposes.
The trachyte which was the subject of this work was subjected to physicochemical and electrochemical characterizations. X-ray diffraction, Fourier transform infrared (FT-IR), X-ray fluorescence, EDX analysis, scanning electron microscopy, cyclic voltammetry, electrochemical impedance spectroscopy were used. The physicochemical characterization have indicated the presence of elements such as Albite (Na (AlSi3O8); Microcline (K(AlSi3O8); Muscovite (KAl2(Si3Al)O10 (OH)2) and Diopside Aluminum (Ca(MgFeAl)SiAl)2O6). X-ray fluorescence revealed presence of certain chemical elements in the form of oxide (SiO2: 65.24 wt%; Al2O3: 15.49 wt%; Fe2O3: 5.31 wt%; Ca0: 0.02 wt%; MgO: 0.01 wt%; SO3: 0.03 wt%; Na2O: 3.45 wt%; K2O: 5.65 wt% and P2O5: 0.029 wt%). FTIR and EDX confirmed the results obtained by X-ray and X-ray fluorescence. Presence of quartz, particles of trachyte in the form of clusters of fine aggregates and platelets in the form of rods with irregular contours was confirmed by scanning electron microscopy. Electrochemical characterization showed that our material has affinity with K3Fe(CN)6 and Ru(NH3)6Cl3, but this affinity is much more pronounced with K3Fe(CN)6. Modifying glassy carbon electrode with a fine fraction of the trachyte significantly increased sensitivity of the electrode of these species. SiO2/Al2O3 ratio confirmed mechanical resistance of our material and would predestine it in the manufacture of geopolymer binders. Sum% SiO2 + % Al2O3 + % Fe2O3 greater than 70 wt% indicated possibility of using material as pozzolanic materials. High level of alumina, low content of alkaline elements (K2O, Na2O) allow the use of trachyte as a raw material for manufacture of refractory products. This information would allowed us to consider the use of our material for electroanalytical, industrial purposes.
Author Ngameni, Emmanuel
Ngatchou, Beaufils Ngana
Nguihdama, Dawai
Nanseu-Njiki, Charles Péguy
Pengou, Martin
Wahabou, Abdoul
Dai-Yang, Lemankréo
Wamba, Odilon Romaric Tchio
Kouamo, Hervé Tchakouté
Tcheumi, Hervé Leclerc
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  givenname: Hervé Leclerc
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  givenname: Odilon Romaric Tchio
  surname: Wamba
  fullname: Wamba, Odilon Romaric Tchio
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  givenname: Hervé Tchakouté
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  fullname: Kouamo, Hervé Tchakouté
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  givenname: Emmanuel
  surname: Ngameni
  fullname: Ngameni, Emmanuel
  organization: Analytical Chemistry Laboratory, Faculty of Sciences, University of Yaounde I-Cameroon
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Cites_doi 10.1002/elan.200603654
10.1016/0040-1951(87)90206-X
10.1016/j.ceramint.2012.06.021
10.1029/GD008p0223
10.1016/j.talanta.2010.01.049
10.1144/GSL.SP.1987.030.01.13
10.1016/0012-821X(82)90042-5
10.1016/0040-1951(83)90035-5
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Physicochemical
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Electrochemical
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Snippet The trachyte which was the subject of this work was subjected to physicochemical and electrochemical characterizations. X-ray diffraction, Fourier transform...
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SubjectTerms Affinity
Aluminum oxide
Ammonia
Calcium magnesium silicates
Chemical elements
Chemistry
Chemistry and Materials Science
Diopside
Electrochemical analysis
Electrochemical impedance spectroscopy
Electrodes
Fourier transforms
Geopolymers
Glassy carbon
Infrared analysis
Infrared spectroscopy
Inorganic Chemistry
Mica
Muscovite
Organic Chemistry
Phosphorus pentoxide
Platelets
Polymer Sciences
Potassium oxides
Pozzolans
Scanning electron microscopy
Silicon dioxide
Sulfur trioxide
Trachyte
X ray fluorescence analysis
Title Physico-Chemical and Electrochemical Characterizations of a Trachyte in the Far North Region of Cameroon for Possible Electroanalytical and Environmental Purposes
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