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Nitrous Oxide Decomposition Over MCO₃-Co₃O₄ (M= Ca, Sr, Ba) Catalysts

Research Abstract

In this paper, nitrous oxide decomposition over a series of MCO₃-Co₃O₄ (M = Ca, Sr, Ba) catalysts having M/Co ratios of 0.1-0.4 has been studied. The various catalysts were characterized using thermal (TGA, DTA), XRD, IR and N₂ sorption techniques. N₂O decomposition activity was found to be dependent on the type of the alkaline earth cation, the M/Co ratio, cobalt oxide crystallites sizes, and the calcination temperature.

Research Authors
BM Abu-Zied, SA Soliman
Research Department
Research Journal
Catalysis letters
Research Pages
299-310
Research Publisher
Boston : Springer US
Research Rank
1
Research Vol
Volume:132 Issue:3-4
Research Website
NULL
Research Year
2009

Nitrous Oxide Decomposition Over MCO₃-Co₃O₄ (M= Ca, Sr, Ba) Catalysts

Research Abstract

In this paper, nitrous oxide decomposition over a series of MCO₃-Co₃O₄ (M = Ca, Sr, Ba) catalysts having M/Co ratios of 0.1-0.4 has been studied. The various catalysts were characterized using thermal (TGA, DTA), XRD, IR and N₂ sorption techniques. N₂O decomposition activity was found to be dependent on the type of the alkaline earth cation, the M/Co ratio, cobalt oxide crystallites sizes, and the calcination temperature.

Research Authors
BM Abu-Zied, SA Soliman
Research Department
Research Journal
Catalysis letters
Research Pages
299-310
Research Publisher
Boston : Springer US
Research Rank
1
Research Vol
Volume:132 Issue:3-4
Research Website
NULL
Research Year
2009

Pure and Ni-substituted Co3O4 spinel catalysts for direct N2O decomposition

Research Abstract

A series of NixCo1-xCo2O4 (0 ≤ x ≤ 1) spinel catalysts were prepared by the co-precipitation method and used for direct N2O decomposition. The decomposition pathway of the parent precipitates was characterized by thermal analysis. The catalysts were calcined at 500 °C for 3 h and characterized by powder X-ray diffraction, Fourier transform infrared, and N2 adsorption-desorption. Nickel cobaltite spinel was formed in the solid state reaction between NiO and Co3O4. The N2O decomposition measurement revealed significant increase in the activity of Co3O4 spinel oxide catalyst with the partial replacement of Co2+ by Ni2+. The activity of this series of catalysts was controlled by the degree of Co2+ substitution by Ni2+, spinel crystallite size, catalyst surface area, presence of residual K+, and calcination temperature.

Research Authors
Bahaa M Abu-Zied, Soliman A Soliman, Sarah E Abdellah
Research Department
Research Journal
Chinese Journal of Catalysis
Research Pages
1105-1112
Research Publisher
Elsevier
Research Rank
1
Research Vol
Volume 35 Issue 7
Research Website
NULL
Research Year
2014

Pure and Ni-substituted Co3O4 spinel catalysts for direct N2O decomposition

Research Abstract

A series of NixCo1-xCo2O4 (0 ≤ x ≤ 1) spinel catalysts were prepared by the co-precipitation method and used for direct N2O decomposition. The decomposition pathway of the parent precipitates was characterized by thermal analysis. The catalysts were calcined at 500 °C for 3 h and characterized by powder X-ray diffraction, Fourier transform infrared, and N2 adsorption-desorption. Nickel cobaltite spinel was formed in the solid state reaction between NiO and Co3O4. The N2O decomposition measurement revealed significant increase in the activity of Co3O4 spinel oxide catalyst with the partial replacement of Co2+ by Ni2+. The activity of this series of catalysts was controlled by the degree of Co2+ substitution by Ni2+, spinel crystallite size, catalyst surface area, presence of residual K+, and calcination temperature.

Research Authors
Bahaa M Abu-Zied, Soliman A Soliman, Sarah E Abdellah
Research Department
Research Journal
Chinese Journal of Catalysis
Research Pages
1105-1112
Research Publisher
Elsevier
Research Rank
1
Research Vol
Volume 35 Issue 7
Research Website
NULL
Research Year
2014

Enhanced direct N2O decomposition over CuxCo1− xCo2O4 (0.0≤ x≤ 1.0) spinel-oxide catalysts

Research Abstract

In this investigation, the direct catalytic decomposition of N2O into N2 and O2 was performed over CuxCo1−xCo2O4 (x = 0.0 ≤ x ≤ 1.0) spinel-oxide catalysts. These catalysts were synthesized by the co-precipitation method followed by calcination at 500 °C. The activity results demonstrated that the partial replacement of Co2+ by Cu2+ in the spinel-oxide Co3O4 led to a significant improvement in the N2O decomposition. Additionally, the activity was found to be controlled by other parameters, including the size of the spinel crystallites, the surface area of the catalysts, and the presence of residual potassium ions.

Research Authors
Bahaa M Abu-Zied, SA Soliman, SE Abdellah
Research Department
Research Journal
Journal of Industrial and Engineering Chemistry
Research Pages
814-821
Research Publisher
Elsevier
Research Rank
1
Research Vol
volume 21
Research Website
NULL
Research Year
2015

Enhanced direct N2O decomposition over CuxCo1− xCo2O4 (0.0≤ x≤ 1.0) spinel-oxide catalysts

Research Abstract

In this investigation, the direct catalytic decomposition of N2O into N2 and O2 was performed over CuxCo1−xCo2O4 (x = 0.0 ≤ x ≤ 1.0) spinel-oxide catalysts. These catalysts were synthesized by the co-precipitation method followed by calcination at 500 °C. The activity results demonstrated that the partial replacement of Co2+ by Cu2+ in the spinel-oxide Co3O4 led to a significant improvement in the N2O decomposition. Additionally, the activity was found to be controlled by other parameters, including the size of the spinel crystallites, the surface area of the catalysts, and the presence of residual potassium ions.

Research Authors
Bahaa M Abu-Zied, SA Soliman, SE Abdellah
Research Department
Research Journal
Journal of Industrial and Engineering Chemistry
Research Pages
814-821
Research Publisher
Elsevier
Research Rank
1
Research Vol
volume 21
Research Website
NULL
Research Year
2015

Effect of Substitution Degree and the Calcination Temperature on the N2O Decomposition over Zinc Cobaltite Catalysts

Research Abstract

In this paper, a series of zinc cobaltite catalysts with the general formula
ZnxCo1−xCo2O4 (x = 0.25, 0.50, 0.75 and 1.0) has been prepared using the
co-precipitation method. Thermal analyzes (TGA and DTA) were used to
follow up the thermal events accompanying the heat treatment of the parent
mixture. Based on these results, the various parent mixtures were calcined at
500˚C. The obtained solid catalysts were characterized by using XRD, FT-IR
and N2-adsorption. The catalytic decomposition of N2O to N2 and O2 was carried out on the zinc-cobaltite catalysts. It was found that partial replacement
of Co2+ by Zn2+ in Co3O4 spinel oxide led to a significant improvement in their
N2O decomposition activity. Moreover, the catalytic activity was found to be
depended on the calcination temperature utilized.

Research Authors
BM Abu-Zied, SA Soliman, SE Abdellah
Research Department
Research Journal
Modern Research in Catalysis
Research Pages
47-64
Research Publisher
Scientific Research Publishing
Research Rank
1
Research Vol
Vol.06 No.01
Research Website
NULL
Research Year
2017

Effect of Substitution Degree and the Calcination Temperature on the N2O Decomposition over Zinc Cobaltite Catalysts

Research Abstract

In this paper, a series of zinc cobaltite catalysts with the general formula
ZnxCo1−xCo2O4 (x = 0.25, 0.50, 0.75 and 1.0) has been prepared using the
co-precipitation method. Thermal analyzes (TGA and DTA) were used to
follow up the thermal events accompanying the heat treatment of the parent
mixture. Based on these results, the various parent mixtures were calcined at
500˚C. The obtained solid catalysts were characterized by using XRD, FT-IR
and N2-adsorption. The catalytic decomposition of N2O to N2 and O2 was carried out on the zinc-cobaltite catalysts. It was found that partial replacement
of Co2+ by Zn2+ in Co3O4 spinel oxide led to a significant improvement in their
N2O decomposition activity. Moreover, the catalytic activity was found to be
depended on the calcination temperature utilized.

Research Authors
BM Abu-Zied, SA Soliman, SE Abdellah
Research Department
Research Journal
Modern Research in Catalysis
Research Pages
47-64
Research Publisher
Scientific Research Publishing
Research Rank
1
Research Vol
Vol.06 No.01
Research Website
NULL
Research Year
2017

Genesis of nanocrystalline Ho2O3 via thermal decomposition of holmium acetate: structure evolution and electrical conductivity properties

Research Abstract

NULL

Research Authors
Bahaa M. Abu-Zied, Abdullah M. Asiri
Research Department
Research Journal
Journal of Rare Earths
Research Pages
185–192
Research Publisher
Elsevier
Research Rank
1
Research Vol
37
Research Website
https://www.sciencedirect.com/science/article/abs/pii/S1002072118301868
Research Year
2019

Fabrication of 1,2-dichlorobenzene sensor based on mesoporous MCM-41 material

Research Abstract

NULL

Research Authors
Bahaa M. Abu-Zied, M.M. Alam, Abdullah M. Asiri, Wilhelm Schwieger, Mohammed M. Rahman
Research Department
Research Journal
Colloids and Surfaces A: Physicochemical and Engineering Aspects
Research Pages
161–169
Research Publisher
Elsevier
Research Rank
1
Research Vol
562
Research Website
NULL
Research Year
2019
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