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溶胶-凝胶法制备Zn掺杂钇铁石榴石纳米材料的结构、磁性及机理研究

Study on the Structure, Magnetic Properties and Mechanism of Zn-Doped Yttrium Iron Garnet Nanomaterial Prepared by the Sol-gel Method.

作者信息

Guo Yuheng, Li Haiyan, Li Shouqiang, Chen Leilei, Li Zhenhai

机构信息

School of Electronic Engineering, Chengdu Technological University, Chengdu 611730, China.

Department of Mathematics, Sichuan University, Chengdu 610065, China.

出版信息

Gels. 2022 May 23;8(5):325. doi: 10.3390/gels8050325.

Abstract

To explore the effect and mechanism of bivalent ion doping on yttrium iron garnet (YIG), Zn-YIG (Zn-doped YIG) nanoparticles with a size of 60~70 nm were prepared by the sol-gel method. It was proven that Zn ion doping resulted in lattice expansion and internal stress due to crystallite size shrinkage. A Raman spectroscopic analysis proved the influence of Zn doping on the crystal structure and peak intensity by analyzing Raman vibration modes. The characteristics and chemical mechanism of mass loss and phase evolution in each temperature region were explored through TG-DSC measurements. Moreover, it was revealed that the antiferromagnetic coupling, pinning mechanisms and particle aggregation lead to coercivity, exhibiting different variation trends. A saturation magnetization () curve variation mechanism was further revealed, which was due to the thermal effects, super-exchange effect, and coupling effect between sub-lattices. Meanwhile, the influence of the thermal effect on and its mechanism were explored by spin theory, and it was proven that it was mainly caused by the random arrangement of magnetic moments and thermal vibration. These results provide theoretical support for the wider application of YIG devices in microwave and high-temperature fields.

摘要

为探究二价离子掺杂对钇铁石榴石(YIG)的影响及作用机制,采用溶胶 - 凝胶法制备了尺寸为60~70 nm的Zn - YIG(锌掺杂钇铁石榴石)纳米颗粒。结果表明,由于微晶尺寸收缩,锌离子掺杂导致晶格膨胀和内应力。通过拉曼光谱分析拉曼振动模式,证实了锌掺杂对晶体结构和峰强度的影响。通过热重 - 差示扫描量热法(TG - DSC)测量,探究了各温度区域质量损失和相演变的特征及化学机制。此外,研究发现反铁磁耦合、钉扎机制和颗粒聚集导致矫顽力呈现不同的变化趋势。进一步揭示了饱和磁化强度()曲线变化机制,其归因于热效应、超交换效应和亚晶格间的耦合效应。同时,利用自旋理论探究了热效应对的影响及其机制,结果表明这主要是由磁矩的随机排列和热振动引起的。这些结果为YIG器件在微波和高温领域的更广泛应用提供了理论支持。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/22b0/9140988/3e5830abe8a3/gels-08-00325-g001.jpg

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