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首页> 外文期刊>The journal of physics and chemistry of solids >Dielectric, electrical transport and magnetic properties of Er3+ substituted nanocrystalline cobalt ferrite
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Dielectric, electrical transport and magnetic properties of Er3+ substituted nanocrystalline cobalt ferrite

机译:Er3 +取代的纳米晶钴铁氧体的介电,电传输和磁性能

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Erbium substituted cobalt ferrite (CoFe2-xEr5O4; x=0.0-0.2, referred to CFEO) materials were synthesized by sol-gel auto-combustion method. The effect of erbium (Er3+.) substitution on the crystal structure, dielectric, electrical transport and magnetic properties of cobalt ferrite is evaluated. CoFe2-xEr5O4 ceramics exhibit the spinel cubic structure without any impurity phase for x <= 0.10 whereas formation of the ErFeO3 orthoferrite secondary phase was observed for x >= 0.15. All the CFEO samples demonstrate the typical hysteresis (M-H) behavior with a decrease in magnetization as a function of Er content due to weak superexchange interaction. The frequency (f) dependent dielectric constant (epsilon') revealed the usual dielectric dispersion. The epsilon'-f dispersion (f=20 Hz to 1 MHz) fits to the modified Debye's function with more than one ion contributing to the relaxation. The relaxation time and spread factor derived are similar to 10(-4) s and similar to 0.61(+/- 0.04), respectively. Electrical and dielectric studies indicate that epsilon' increases and the dc electrical resistivity decreases as a function of Er content (x <= 0.15). Complex impedance analyses confirm only the grain interior contribution to the conduction process. Temperature dependent electrical transport and room temperature ac conductivity (sigma(ac)) analyses indicate the semiconducting nature and small polaron hopping. (C) 2016 Elsevier Ltd. All rights reserved.
机译:通过溶胶-凝胶自动燃烧法合成了substituted取代的钴铁氧体(CoFe2-xEr5O4; x = 0.0-0.2,简称CFEO)材料。评估了((Er3 +。)替代对钴铁氧体晶体结构,介电,电传输和磁性能的影响。对于x <= 0.10,CoFe2-xEr5O4陶瓷呈现出尖晶石立方结构,没有任何杂质相,而对于x> = 0.15,则观察到ErFeO3正铁氧体第二相的形成。所有CFEO样品均表现出典型的磁滞(M-H)行为,由于弱的超交换作用,磁化强度随Er含量的变化而降低。取决于频率(f)的介电常数(ε)显示出通常的介电色散。 ε-f色散(f = 20 Hz至1 MHz)符合修改后的德拜函数,并且有多个离子有助于弛豫。得出的弛豫时间和扩展因子分别类似于10(-4)s和0.61(+/- 0.04)。电学和电介质研究表明,ε的增加和直流电阻率的降低是Er含量的函数(x <= 0.15)。复杂的阻抗分析仅确认晶粒内部对传导过程的贡献。温度相关的电传输和室温下的交流电导率(sigma(ac))分析表明半导体性质和极化子跳跃小。 (C)2016 Elsevier Ltd.保留所有权利。

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