首页> 外文会议>Annual Conference on Magnetism and Magnetic Materials >(07A507) The magnetic Curie temperature and exchange coupling between cations in tetragonal spinel oxide Mn_(2.5)M_(0.5)O_4 (M = Co, Ni, Mn, Cr, and Mg) films
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(07A507) The magnetic Curie temperature and exchange coupling between cations in tetragonal spinel oxide Mn_(2.5)M_(0.5)O_4 (M = Co, Ni, Mn, Cr, and Mg) films

机译:(07A507)磁性居里温度和四边形尖晶石氧化物Mn_(2.5)M_(0.5)O_4(M = CO,Ni,Mn,Cr和Mg)膜之间的阳离子之间的交换耦合

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Mn_3O_4 is a Jahn-Taller tetragonal ferrite that has a relatively low Curie temperature (T_c) of ~43 K due to weak coupling between the canting spins. In this study, we fabricated a series of 100-nm-thick Mn_(2.5)M_(0.5)O_4 (M = Co, Ni, Mn, Cr, and Mg) films via oxygen-plasma-assisted molecular beam epitaxy and measured the structural and magnetic properties of these films. These films show single phase quality, and the c-axis lattice parameter of pure Mn_3O_4 is 0.944 nm, with a c/a ratio ~1.16, consistent with the bulk values. The replacement of Mn by M (M = Co, Ni, Cr, and Mg) changes the lattice parameters, and the c/a ratio varies between 1.16 and 1.06 depending upon the cation distribution of the films. The magnetic Curie temperatures of these films also vary in the range of 25-66 K in that Ni and Co enhance the T_c whereas Mg reduces the T_c (Cr shows no effect on the T_c). These changes to the T_c are related to both the element electronic state and the cation distributions in these compounds. As a non-collinear spin configuration can induce electrical polarization, the present study provides a systematic way to enhance the magnetic transition temperature in tetragonal spinel ferrites.
机译:MN_3O_4是一种巨大的四方铁素体,其具有〜43k的相对低的居里温度(T_c),由于倾荷旋转之间的弱耦合。在这项研究中,我们通过氧等离子体辅助分子束外延制造了一系列100nm厚的Mn_(2.5)M_(0.5)O_4(M = Co,Ni,Mn,Cr和Mg)膜并测量这些薄膜的结构和磁性。这些薄膜显示单相质量,纯MN_3O_4的C轴晶格参数为0.944nm,C / A比率〜1.16,与散装值一致。通过M(m = Co,Ni,Cr和Mg)替换Mn改变晶格参数,并且C / A比率根据薄膜的阳离子分布而变化1.16和1.06。这些薄膜的磁性居里温度在25-66k的范围内也可以在Ni和Co增强T_c的范围内变化,而Mg降低T_C(CR对T_C没有影响没有影响)。对T_C的这些变化与这些化合物中的元素电子状态和阳离子分布有关。由于非共线旋转构造可以诱导电极化,本研究提供了一种系统的系统,以提高四方尖晶石铁氧体中的磁转变温度。

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