论文标题
la $ _ {1.37} $ sr $ _ {1.63} $ Mn $ _2 $ _2 $ o $ _7 $单晶生长的Laser-Diode-diode-heated floating-Zone Techniqe
Colossal Negative Magnetoresistance Effect in A La$_{1.37}$Sr$_{1.63}$Mn$_2$O$_7$ Single Crystal Grown by Laser-Diode-Heated Floating-Zone Technique
论文作者
论文摘要
We have grown La$_{1.37}$Sr$_{1.63}$Mn$_2$O$_7$ single crystals with a laser-diode-heated floating-zone furnace and studied the crystallinity, structure, and magnetoresistance (MR) effect by in-house X-ray Laue diffraction, X-ray powder diffraction, and resistance measurements. la $ _ {1.37} $ sr $ _ {1.63} $ mn $ _2 $ _2 $ o $ _7 $单晶在房间温度下结晶成具有空间群\ emph {i} \ emph {i} 4 {/} \ emmph {mmm}的四方结构。在0 t时,最大电阻中心约为$ \ sim $ 166.9K。低于$ \ sim $ 35.8 k,它显示出一个绝缘特征,冷却时电阻增加。 \ emph {b}〜= 〜7 t的施加磁场强烈抑制了电阻,表明了负MR效应。最小MR值等于$ - $ 91.23 \%在7 T和128.7 K.磁场依赖性电阻显示在1.67、140和322 K时的不同特征,我们从中计算了相应的MR值。在14 T和140 K时,巨大的负MR值降至$ -94.04(5)\%。我们在示意性地使用不同模型拟合MR值,以理想描述MR值与\ Emph {B}曲线的有趣特征。
We have grown La$_{1.37}$Sr$_{1.63}$Mn$_2$O$_7$ single crystals with a laser-diode-heated floating-zone furnace and studied the crystallinity, structure, and magnetoresistance (MR) effect by in-house X-ray Laue diffraction, X-ray powder diffraction, and resistance measurements. The La$_{1.37}$Sr$_{1.63}$Mn$_2$O$_7$ single crystal crystallizes into a tetragonal structure with space group \emph{I}4{/}\emph{mmm} at room temperature. At 0 T, the maximum resistance centers around $\sim$166.9 K. Below $\sim$35.8 K, it displays an insulating character with an increase in resistance upon cooling. An applied magnetic field of \emph{B}~=~7~T strongly suppresses the resistance indicative of a negative MR effect. The minimum MR value equals $-$91.23\% at 7 T and 128.7 K. The magnetic-field-dependent resistance shows distinct features at 1.67, 140, and 322 K, from which we calculated the corresponding MR values. At 14 T and 140 K, the colossal negative MR value is down to $-$94.04(5)\%. We schematically fit the MR values with different models for an ideal describing of the interesting features of the MR value versus \emph{B} curves.