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首页> 外文期刊>CERAMICS INTERNATIONAL >Influence of Sr doping on structural, electrical and magnetic properties of La0.7Ca0.3MnO3 nanoparticles
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Influence of Sr doping on structural, electrical and magnetic properties of La0.7Ca0.3MnO3 nanoparticles

机译:SR掺杂对LA0.7CA0.3MNO3纳米粒子结构,电磁性的影响

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La0.7Ca0.3MnO3 nanoparticles doped with Sr ( La0.7Ca0.3MnO3, x = 0, 0.05, 0.10, 0.15, 0.20, 0.25, and 0.30) were prepared by sol-gel method. Their structural, electrical and magnetic properties were examined by various analytical methods. XRD (X-ray diffraction) showed a transition in phase from orthorhombic (space group of Pbnm) to rhombohedral (space group of R (3) over barc) at x = 0.10 similar to 0.15. Cell volume continuously expanded as x increased due to larger radius of Sr2+ ion (1.31 angstrom) compared to that of Ca2+ (1.18 angstrom). This substitution accordingly led to changes in tolerance factor (tau). TEM images confirmed structural phase transition from Pbnm to R (3) over barc. Average particle sizes of samples with x = 0.05 and 0.25 were measured by TEM as 56 nm and 45 nm, respectively. Furthermore, a significant increase in T-c and T-p, for LCSMO nanoparticles was observed as x rose from lower to higher values. The enhancement of double-exchange (DE) interactions was caused by larger radius of Sr2+ cation, which induced modifications in the Mn-O-Mn bond angles and Mn-O bond distance. This, in turn, boosted magnetic and electrical properties of the resulting nanoparticles. On the other hand, the effect of particle size and intrinsic characteristics was found responsible for approximate values of saturation magnetization. Finally, the increase in coercivity and the decrease in temperature coefficient of resistance (TCR %) were related to spin disordered surface layers of particles and scattering of electrons at grain boundaries, respectively.
机译:通过溶胶 - 凝胶法制制备La0.7Ca0.3mNO3掺杂有Sr的纳米颗粒(La0.7ca0.3mNO3,x = 0,0.05,0.10,0.15,0.20,0.25,0.30)。通过各种分析方法检查它们的结构,电气和磁性。 XRD(X射线衍射)显示与X = 0.10的rhombenheh中r rhombenhedral(Spbnm的Pbnm的空间组)的阶段(空间组)的转变为X = 0.10。由于CA2 +(1.18埃埃斯特朗姆)的较大半径为较大的SR2 +离子(1.31埃)而连续扩增的细胞体积随着SR2 +离子(1.31埃)的半径而增加。相应地导致公差因子(TAU)的变化。 TEM图像通过BARC从PBNM到R(3)的结构相转变。用x = 0.05和0.25的样品的平均粒度分别为56nm和45nm。此外,对于LCSMO纳米颗粒的T-C和T-P显着增加,为X从较低到更高的值升高。双交换(DE)相互作用的增强是由较大的SR2 +阳离子引起的,该半径为Mn-O-Mn键角和Mn-O键距离的改性。这反过来,又提高了所得纳米颗粒的磁性和电性能。另一方面,发现粒度和内在特征的效果负责饱和磁化的近似值。最后,矫顽力的增加和抗性温度变量(TCR%)分别与颗粒的纺丝无序表面层和晶界的电子散射有关。

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