首页> 外文会议>International Conference on Diffusion in Materials >Diffusion in binary and pseudo-binary L1_2 indides, stannides, gallides and aluminides of rare-earth elements as studied using perturbed angular correlation of ~(111)In/Cd
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Diffusion in binary and pseudo-binary L1_2 indides, stannides, gallides and aluminides of rare-earth elements as studied using perturbed angular correlation of ~(111)In/Cd

机译:二元和伪二进制L1_2的扩散凝结,使用〜(111)中的毫扰角度相关的稀土元素的锡阳分,千瓦柿和铝化合物在/ CD中研究

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Diffusional jumps can produce fluctuating electric field gradients at nuclei of jumping atoms. Using perturbed angular correlation of gamma rays (PAC), jumps of probe atoms cause nuclear quadrupole relaxation that can be fitted to obtain the mean jump frequency. An overview is given of the application of this approach to highly ordered intermetallic compounds having the L1_2 (Cu_3Au) crystal structure. New results are then presented for jump frequencies of ~(111)In/Cd probe atoms in pseudo-binary L1_2 compounds of the forms In_3(La_(1-x)Pr_x) and (In_(1-x)Sn_x)_3La. For the mixed rare-earth system, jump frequencies are found to scale with composition between jump frequencies of the end-member phases In_3La and In_3Pr. However, for the mixed sp-element system, a large decrease in jump frequency is observed as Sn atoms substitute for In-atoms. This difference in behavior appears to depend on whether atomic disorder is on the diffusion sublattice (In-Sn substitution), as opposed to a neighboring sublattice (La-Pr substitution), whether or not there is a difference in diffusion mechanism between end-member phases, and/or whether or not there is a valence difference between the mixing atoms. All three conditions apply for only (In_(1-x)Sn_x)_3La.
机译:扩散跳跃可以在跳跃原子的核上产生波动的电场梯度。使用伽马射线(PAC)的扰动角度相关性,探针原子的跳跃导致核四极松弛,可以安装以获得平均跳跃频率。给出了这种方法在具有L1_2(CU_3AU)晶体结构的高度有序金属间化合物中的应用。然后呈现新的结果的〜(111)中/ CD探针原子的跳频,在形式的in_3(la_(1-x)pr_x)和(In_(1-x)sn_x)_3la中的伪二进制L1_2 in / cd探针原子。对于混合稀土化系统,发现跳频以延长端构件阶段的跳频与IN_3PR的跳跃频率之间的组成。然而,对于混合的SP元件系统,观察到跳频的大幅减小为SN原子代替原子原子。这种行为的这种差异似乎取决于原子序是否在扩散子组(In-SN替换)上,而不是邻近的子分子(La-Pr替换),无论是端部件之间的扩散机制是否存在差异阶段,和/或混合原子之间是否存在价差。所有三种条件仅适用于(IN_(1-x)SN_X)_3LA。

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