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Effect of Heat-Treatment Temperatures on Magnetite Oxidation in 20SiO2.50FeO.30CaO Glass Ceramic Prepared by the Sol-Gel Method

Publish Year: 1402
Type: Journal paper
Language: English
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JR_IJMSEI-20-2_012

Index date: 4 August 2024

Effect of Heat-Treatment Temperatures on Magnetite Oxidation in 20SiO2.50FeO.30CaO Glass Ceramic Prepared by the Sol-Gel Method abstract

Abstract The effect of different heat-treatment temperatures on the magnetic, crystallization, and structural properties of 20SiO2.50FeO.30CaO (mol%) glass ceramics was studied. The initial glass was synthesized by the sol-gel method at 25℃  with a precursors to solvent ratio of 1/5. After aging the resulted gel for 24 h at room temperature, it was dried in an electric dryer at 110 ℃ . By heat treatment at different temperatures, different phases such as magnetite, maghemite, and hematite were crystallized in the glass. The maximum stability temperature of magnetite and maghemite were 360℃  and 440℃  respectively. By increasing the heat treatment temperature to higher than 440℃ , the oxidation of maghemite to hematite was occureds. The highest magnetization amount (1.9 emu/g) belonged to sample heat treated at 680℃ . By increasing the heat treatment temperature to 840℃ , the magnetization decreased to 0.8 emu/g, due to the oxidation of maghemite. By increasing the heat treatment temperature from 440℃  to 680℃ , crystalline size of maghemite was increased from 40 to 200 nm. By forther increment of temperature to 840℃ , the size of maghemite crystals decreased to 17nm, due to the oxidation of maghemite to hematite. Abstract The effect of different heat-treatment temperatures on the magnetic, crystallization, and structural properties of 20SiO2.50FeO.30CaO (mol%) glass ceramics was studied. The initial glass was synthesized by the sol-gel method at 25℃  with a precursors to solvent ratio of 1/5. After aging the resulted gel for 24 h at room temperature, it was dried in an electric dryer at 110 ℃ . By heat treatment at different temperatures, different phases such as magnetite, maghemite, and hematite were crystallized in the glass. The maximum stability temperature of magnetite and maghemite were 360℃  and 440℃  respectively. By increasing the heat treatment temperature to higher than 440℃ , the oxidation of maghemite to hematite was occureds. The highest magnetization amount (1.9 emu/g) belonged to sample heat treated at 680℃ . By increasing the heat treatment temperature to 840℃ , the magnetization decreased to 0.8 emu/g, due to the oxidation of maghemite. By increasing the heat treatment temperature from 440℃  to 680℃ , crystalline size of maghemite was increased from 40 to 200 nm. By forther increment of temperature to 840℃ , the size of maghemite crystals decreased to 17nm, due to the oxidation of maghemite to hematite.

Effect of Heat-Treatment Temperatures on Magnetite Oxidation in 20SiO2.50FeO.30CaO Glass Ceramic Prepared by the Sol-Gel Method Keywords:

Effect of Heat-Treatment Temperatures on Magnetite Oxidation in 20SiO2.50FeO.30CaO Glass Ceramic Prepared by the Sol-Gel Method authors

parisa rastgoo oskoui

university of tabriz

mohammad rezvani

University of Tabriz

Abbas kianvash

university of tabriz

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K.M. Zekry, N. Yamamoto, K. Hayashi, A. Takeuchi, A.Z.A. Alkhooly, ...
H. Xiang, Q. Yang, Y. Gao, D. Zhu, S. Pan, ...
I.W. Folkert, S. Devalaraja, G.P. Linette, K. Weber, M. Haldar, ...
M. Chang, Z. Hou, M. Wang, C. Li, J. Lin, ...
J. Beik, Z. Abed, F.S. Ghoreishi, S. Hosseini-Nami, S. Mehrzadi, ...
M. Nabil, P. Zunino, "A computational study of cancer hyperthermia ...
N. Malhotra, J.-S. Lee, R.A.D. Liman, J.M.S. Ruallo, O.B. Villaflores, ...
V.V. Mody, A. Singh, B. Wesley, "Basics of magnetic nanoparticles ...
O. Bretcanu, E. Verné, M. Cöisson, P. Tiberto, P. Allia, ...
S.A. Shah, M. Hashmi, S. Alam, A. Shamim, "Magnetic and ...
D. Arcos, R. Del Real, M. Vallet-Regı, "A novel bioactive ...
G. Li, K. Zhang, Z. Pei, N. Zhang, Y. Yu, ...
R.K. Singh, G. Kothiyal, A. Srinivasan, "Magnetic and structural properties ...
C.-S. Hsi, H.-Z. Cheng, H.-J. Hsu, Y.-S. Chen, M.-C. Wang, ...
G. Kothiyal, K. Sharma, A. Dixit, A. Srinivasan, "Structural and ...
S.A. Shah, M. Hashmi, S. Alam, "Effect of aligning magnetic ...
S.A. Abdel-Hameed, A.M. El Kady, "Effect of different additions on ...
R.K. Singh, A. Srinivasan, G. Kothiyal, "Evaluation of CaO–SiO۲–P۲O۵–Na۲O–Fe۲O۳ bioglass-ceramics ...
R.K. Singh, A. Srinivasan, "Bioactivity of ferrimagnetic MgO–CaO–SiO۲–P۲O۵–Fe۲O۳ glass-ceramics", Ceram. ...
S.A. Abdel-Hameed, M.A. Marzouk, M.M. Farag, "Effect of P۲O۵ and ...
S.C. von Clausbruch, M. Schweiger, W. Höland, V. Rheinberger, "The ...
F. Baino, E. Fiume, M. Miola, F. Leone, B. Onida, ...
K. Mahmoudi, A. Bouras, D. Bozec, R. Ivkov, C. Hadjipanayis, ...
S. Gavazzi, A.L. van Lier, C. Zachiu, E. Jansen, J.J.W. ...
A. Yazdanpanah, F. Moztarzadeh, S. Arabyazdi, "A heat-generating lithium-ferrite doped ...
G. Vallejo-Fernandez, O. Whear, A. Roca, S. Hussain, J. Timmis, ...
R. Hergt, S. Dutz, M. Röder, "Effects of size distribution ...
M. Coïsson, G. Barrera, F. Celegato, L. Martino, S.N. Kane, ...
M. Rezvani, P.R. Oskoui, A. Kianvash, "Preparation of Self‐Catalyzing Sols ...
M. Rezvani, "The effect of complex nucleating agent on the ...
M. Kiani Zitani, M. Rezvani, R. Asadi Tabrizi, "Crystallization, sinterability ...
R. Nariyal, P. Kothari, B. Bisht, "FTIR measurements of SiO۲ ...
M. Stoia, R. Istratie, C. Păcurariu, Investigation of magnetite nanoparticles ...
P. Roonasi, A. Holmgren, "A Fourier transform infrared (FTIR) and ...
Q.-Z. Chen, Y. Li, L.-Y. Jin, J.M. Quinn, P.A. Komesaroff, ...
Z. Li, C. Chanéac, G. Berger, S. Delaunay, A. Graff, ...
S. Schwaminger, D. Bauer, P. Fraga-García, F. Wagner, S. Berensmeier, ...
R. Grau-Crespo, A.Y. Al-Baitai, I. Saadoune, N.H. De Leeuw, "Vacancy ...
E. Darezereshki, "Synthesis of maghemite (γ-Fe۲O۳) nanoparticles by wet chemical ...
X. Yang, P. Roonasi, R. Jolsterå, A. Holmgren, "Kinetics of ...
M. Gotić, G. Koščec, S. Musić, "Study of the reduction ...
Z.K. Heiba, S.I. Ahmed, M.B. Mohamed, "Improved nonlinear optical and ...
A. El-Qanni, N.N. Nassar, G. Vitale, A. Hassan, "Maghemite nanosorbcats ...
Q. Gao, F. Chen, J. Zhang, G. Hong, J. Ni, ...
A. Uheida, G. Salazar-Alvarez, E. Björkman, Z. Yu, M. Muhammed, ...
C.-W. Chen, "Magnetism and metallurgy of soft magnetic materials", Courier ...
A. Goldman, Handbook of modern ferromagnetic materials, Springer Science & ...
Q. Chen, W. Chen, Y. Wang, B. Miao, "EPR NMR, ...
A. Fedotovs, A. Antuzevics, U. Rogulis, M. Kemere, R. Ignatans, ...
A. Yousefi, S. Seyyed Ebrahimi, A. Seyfoori, H. Mahmoodzadeh Hosseini, ...
N. Chaudhari, S. Warule, S. Muduli, B. Kale, S. Jouen, ...
T.-K. Van, H.G. Cha, C.K. Nguyen, S.-W. Kim, M.-H. Jung, ...
L. Wang, N.T. Nguyen, Z. Shen, P. Schmuki, Y. Bi, ...
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