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磁性颗粒静磁相互作用对磁反转影响的研究
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作者 葛泽玲 郑勇林 《安徽师范大学学报(自然科学版)》 CAS 北大核心 2013年第1期41-45,共5页
建立了二维磁性颗粒膜系统的物理模型,应用能量最小原理计算了磁性颗粒的平均磁矩,讨论了系统的铁磁序及反铁磁态(AFM)、铁磁态(FM)和顺磁态(PM)存在的范围和由AFM向FM转变的条件.研究表明:对于磁性颗粒浓度较小(v/a3≈0.05)的纳米级的... 建立了二维磁性颗粒膜系统的物理模型,应用能量最小原理计算了磁性颗粒的平均磁矩,讨论了系统的铁磁序及反铁磁态(AFM)、铁磁态(FM)和顺磁态(PM)存在的范围和由AFM向FM转变的条件.研究表明:对于磁性颗粒浓度较小(v/a3≈0.05)的纳米级的铁磁颗粒膜系统,其临界温度Tc≈200K.而当在T<Tc且J2l-1=2γ2时,发生由AFM向FM态的相转变;当T>Tc且J2l-1=2γ2T/Tc时,发生FM向PM的相转变;当T=Tc且J2l-1≤2γ2时,发生由AFM态向PM态的转变.这一性质在低温传感器研究领域具有重要的现实意义. 展开更多
关键词 磁性颗粒 颗粒磁矩 铁磁 反铁磁态和顺磁态 磁有序
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Cation ratio and oxygen defects for engineering the magnetic transition of monodisperse nonstoichiometric zinc ferrite nanoparticles
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作者 Yong Sun Xia Deng +7 位作者 Yan Zong Xinghua Li Junwei Zhang Juan Feng Xiao Chi Zhenhua Shi Xinliang Zheng Yong Peng 《Science China Materials》 SCIE EI CAS CSCD 2021年第8期2017-2028,共12页
Monodisperse nonstoichiometric zinc ferrite nanoparticles with a tunable size of 4.1–32.2 nm are fabricated via thermal decomposition. An extrinsic impurity phase of the ZnO component is present in the zinc ferrite n... Monodisperse nonstoichiometric zinc ferrite nanoparticles with a tunable size of 4.1–32.2 nm are fabricated via thermal decomposition. An extrinsic impurity phase of the ZnO component is present in the zinc ferrite nanoparticles with a size of <10 nm, but this phase can be eliminated after the air annealing treatment. The atom ratio of Zn/Fe and concentration of oxygen vacancies decrease as the particle size of zinc ferrite increases, causing magnetic transition from superparamagnetism to ferromagnetism. The X-ray magnetic circular dichroism spectra reveal that the spin magnetic moments of Fe^(3+)are reduced, and the orbital magnetic moments are frozen with the increasing atom ratio of Zn/Fe. Therefore,saturation magnetization decreases. The saturation magnetizations of all the zinc ferrite nanoparticles decrease after the air annealing treatment, suggesting that oxygen vacancies considerably influence the magnetic properties. The air annealing treatment can minimize the number of oxygen defects,which trigger some of the Fe^(3+)–OV–Fe^(3+)ferrimagnetic couplings to transfer into the Fe^(3+)–O^(2-)–Fe^(3+)antiferromagnetic couplings. This work provides new insights regarding the magnetic performance of spinel ferrites by tuning the stoichiometric ratio and oxygen defects. 展开更多
关键词 zinc ferrite nonstoichiometric magnetic transition oxygen defects
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