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Mechanical characteristics of solution grown potassium zinc chloride crystals doped with lithium ions

Research Authors
A. Abu El-Fadl, A.S. Soltan, M.A. Hefni, N.M. Shaalan
Research Department
Research Journal
Current Applied Physics
Research Pages
PP. 167–176
Research Rank
1
Research Vol
Vol. 8
Research Year
2008

Exchange charge model calculations of crystal field parameters and crystal field energy levels for [N(CH3)4]2CoCl4 and [N(CH3)4]2MnCl4 single crystals

Research Authors
M.G. Brik, A. El-Korashy, M. Almokhtar
Research Department
Research Journal
Alloys and Compounds
Research Member
Research Pages
PP. 71–77
Research Rank
2
Research Vol
Vol. 459
Research Year
2008

Exchange charge model calculations of crystal field parameters and crystal field energy levels for [N(CH3)4]2CoCl4 and [N(CH3)4]2MnCl4 single crystals

Research Authors
M.G. Brik, A. El-Korashy, M. Almokhtar
Research Department
Research Journal
Alloys and Compounds
Research Member
Amer Abdullah Elkorashy Amer
Research Pages
PP. 71–77
Research Rank
2
Research Vol
Vol. 459
Research Year
2008

Effect of heat treatment on the optical and electrical transport properties of Ge15Sb10Se75 and Ge25Sb10Se65 thin films

Research Authors
K.A. Aly, M.A. Osman, A.M. Abousehly, A.A. Othman
Research Department
Research Journal
Physics and Chemistry of Solids
Research Pages
PP. 2514– 2519
Research Rank
1
Research Vol
Vol. 69
Research Year
2008

Structural transformation on Se0.8Te0.2 chalcogenide glass

Research Abstract

Using X-ray diffraction and differential scanning calorimetry (DSC), the structure and the crystallization mechanism of SeO.8 Teo.2 chalcogenide glass has been studied. The structure of the crystalline phase has been refined using the Rietveld technique. The crystal structure is hexagonal with lattice parameter a = 0.443 nm and c = 0.511 nm. The average crystallite size obtained using Scherrer equation is equal 16.2 nm, so it lies in the nano-range, From the radial distribution function, the short range order (SRO) of the amorphous phase has been discussed. The structure unit of the SRO is regular tetrahedron with (r2/r1) = 1.61. The Se0.8 Te0.2 glassy sample obeys the chemical order network model, CONM. Some amorphous structural parameters have been deduced. The crystallization mechanism of the amorphous phase is one-dimensional growth. The calculated value of the glass transition activation energy (Eg) and the crystalliza¬tion activation energy (Ee) are 159.8 ± OJ and 104J ± 0.51 kllmal, respectively .

Research Authors
N. Afify, M.A. Hussein, N. El-Kabany, N. Fathy
Research Department
Research Journal
Non-Crystalline Solids
Research Pages
pp. 3260-3266
Research Rank
2
Research Vol
Vol. 354, No. 28
Research Year
2008

Structural transformation on Se0.8Te0.2 chalcogenide glass

Research Abstract

Using X-ray diffraction and differential scanning calorimetry (DSC), the structure and the crystallization mechanism of SeO.8 Teo.2 chalcogenide glass has been studied. The structure of the crystalline phase has been refined using the Rietveld technique. The crystal structure is hexagonal with lattice parameter a = 0.443 nm and c = 0.511 nm. The average crystallite size obtained using Scherrer equation is equal 16.2 nm, so it lies in the nano-range, From the radial distribution function, the short range order (SRO) of the amorphous phase has been discussed. The structure unit of the SRO is regular tetrahedron with (r2/r1) = 1.61. The Se0.8 Te0.2 glassy sample obeys the chemical order network model, CONM. Some amorphous structural parameters have been deduced. The crystallization mechanism of the amorphous phase is one-dimensional growth. The calculated value of the glass transition activation energy (Eg) and the crystalliza¬tion activation energy (Ee) are 159.8 ± OJ and 104J ± 0.51 kllmal, respectively .

Research Authors
N. Afify, M.A. Hussein, N. El-Kabany, N. Fathy
Research Department
Research Journal
Non-Crystalline Solids
Research Member
Research Pages
pp. 3260-3266
Research Rank
2
Research Vol
Vol. 354, No. 28
Research Year
2008

High surface area thermally stabilized porous iron oxide/silica nanocomposites via a formamide modified sol–gel process

Research Authors
Kamal M.S. Khalil, Salah A. Makhlouf
Research Department
Research Journal
Applied Surface Science
Research Member
Research Pages
PP. 3767–3773
Research Publisher
ELSEVIER
Research Rank
1
Research Vol
Vol. 254
Research Website
http://www.elsevier.com/wps/find/journaldescription.cws_home/505669/<br>description#description
Research Year
2008
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