Study of the Effect of Acidity on the Nanosized Size of Ferrite
Abstract
In many electrical devices, such as transformers, motors, and generators that rely on magnetic fields generated by electrical currents, which always contained iron or one of the iron compounds within their crystalline structure, the importance of this was to increase the magnetic flux and confine it to the desired place. All materials of different types, whether they are gases, liquids, or solids, have magnetic properties as a result of their influence by the magnetic field, but to varying degrees, as some materials have weak magnetic properties, some medium, and others strong. As for temperature, it has a major impact on magnetic properties, and there are materials Others have reversible magnetic properties, meaning that the direction of the field in them is opposite to the direction of the external field (the projected field). In view of the use of magnetic materials in many electronic applications and devices such as microphones, headphones, and wireless means of communication, as well as in computer memory, logic circuits, and high-speed opening and cutting applications in the circuits themselves, it has become important to study the basic properties of these materials and know their physical properties. Many studies have been conducted on These materials are used to know the magnetic properties of the materials and are understood in detail, whether theoretical or experimental, as some of these studies depend on quantum mechanical theory, and this is outside the framework of our current study.
Full text article
References
Rosales MI, Plata AM, Nicho ME, Brito A, Ponce MA. Effect of sintering conditions on microstructure and magnetic properties of Mn–Zn ferrites. J Mater Sci. 1995;30:4446–50.
Ding J, McCormick PG, Street R. Formation of spinel Mn–ferrite during mechanical alloying. J Magn Mag Mater. 1997;171:309–14.
Qureshi AH. The influence of hafnia and impurities (CaO/SiO2) on the microstructure and magnetic properties of Mn–Zn ferrites. J Cryst Growth. 2006;286:365–70.
Azadmanjiri J. Preparation of Mn–Zn ferrite nanoparticles from chemical sol–gel combustion method and the magnetic properties after sintering. J Non Cryst Solids. 2007;353:4170-3.
Mandal K, Mandal SP, Agudo P, Pal M. A study of nanocrystalline (Mn–Zn) ferrite in SiO2 matrix. Appl Surf Sci. 2001;182: 386–9.
Azadmanjiri J, Seyyed Ebrahimi SA. The effect of pH and citric acid concentration on the characterization of nanocrystalline NiFe2O4 powder synthesized by a sol–gel autocombustion method. Phys Metals Metallogr. 2006;102:S21–3.
Azadmanjiri J, Salehani HK, Barati MR, Farzan F. Preparation and electromagnetic properties of Ni1-xCuxFe2O4 nanoparticle ferrites by sol–gel auto-combustion method. Mater Lett. 2007;61: 84–7.
Zhang ZJ, Wang ZL, Chakoumakos BC, Yin JS. Temperature dependence of cation distribution and oxidation state in magnetic Mn-Fe ferrite. J Am Chem Soc. 1998;120:1800–4.
Wang H, Kung S. Crystallization of nanosized Ni–Zn ferrite powders prepared by hydrothermal method. J Magn Mag Mater. 2004;270:230–6.
Wang XH, Li XJ, Yan HH, Qu YD, Sun GL, Xie XH, et al. Research on thermal decomposition kinetic characteristic of emulsion explosive base containing Fe and Mn elements. J Therm Anal Calorim. 2008;91:545–50.
Rane KS, Uskaikar H, Pednekar R, Mhalsikar R. The low temperature synthesis of metal oxides by novel hydrazine method. J Therm Anal Calorim. 2007;90:627–38.
Xavier CS, Candeia RA, Bernardi MIB, Lima SJG, Longo E, Paskocimas CA, et al. Effect of the modifier ion on the properties of MgFe2O4 and ZnFe2O4 pigments. J Therm Anal Calorim. 2007;87:709–13.
Silva MRS, De Miranda LCO, Cassia-Santos MR, Lima SJG, Soledade LEB, Longo E, et al. Influence of the network former on the properties of magnesium spinels. J Therm Anal Calorim. 2007; 87:753–7.
Horowitz HH, Metzger G. A new analysis of thermogravimetric traces. Anal Chem. 1963;35:1465–8.
Zyrichev NA, Shlenskii OF. Kinetics of decomposition of hydrated nitrates by short contact time plasma heating. High Energy Chem. 2000;34:46–52.
Singh G, Singh CP, Frohlich R. Preparation, characterization and thermolysis of metal nitrate complexes with 4,40 -bipyridine. J Therm Anal Calorim. 2006;85:425–31.
Singh G, Baranwal BP, Kapoor IPS, Kumar D, Singh CP, Frohlich R. Transition metal nitrate complexes with hexamethylenetetramine. J Therm Anal Calorim. 2008;91:971–7.
Qureshi AH, Arshad M, Durrani SK, Waqas H. Impact of Pb substitution on the formation of high Tc superconducting phase in BSCCO system derived through sol–gel process. J Therm Anal Calorim. 2008;94:175–80.
Tomar MS, Singh SP, Perez OP, Guzman RP, Calderonc E, Ramo CR. Microelectron synthesis and magnetic behavior of nanostructured ferrites for spintronics. Microelectron J. 2005;36:475–9.
Makovec D, Kodre EA, Arcon I, Drofenik M. Non-stoichiometric zinc–ferrite spinel nanoparticles. J Nanopart Res. 2008;10:131–41.
Authors
Copyright (c) 2024 Journal of Current Medical Research and Opinion

This work is licensed under a Creative Commons Attribution 4.0 International License.