【2h】

Emerging single-phase state in small manganite nanodisks

机译:小型锰矿纳米盘中的单相态

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摘要

In complex oxides systems such as manganites, electronic phase separation (EPS), a consequence of strong electronic correlations, dictates the exotic electrical and magnetic properties of these materials. A fundamental yet unresolved issue is how EPS responds to spatial confinement; will EPS just scale with size of an object, or will the one of the phases be pinned? Understanding this behavior is critical for future oxides electronics and spintronics because scaling down of the system is unavoidable for these applications. In this work, we use La0.325Pr0.3Ca0.375MnO3 (LPCMO) single crystalline disks to study the effect of spatial confinement on EPS. The EPS state featuring coexistence of ferromagnetic metallic and charge order insulating phases appears to be the low-temperature ground state in bulk, thin films, and large disks, a previously unidentified ground state (i.e., a single ferromagnetic phase state emerges in smaller disks). The critical size is between 500 nm and 800 nm, which is similar to the characteristic length scale of EPS in the LPCMO system. The ability to create a pure ferromagnetic phase in manganite nanodisks is highly desirable for spintronic applications.
机译:在复杂的氧化物系统(如锰矿)中,由于强烈的电子相关性,电子相分离(EPS)决定了这些材料的特殊电和磁性能。一个基本但尚未解决的问题是EPS如何响应空间限制。 EPS会随对象的大小缩放吗?还是会固定其中一个阶段?了解这种行为对于未来的氧化物电子产品和自旋电子学至关重要,因为对于这些应用而言,系统的按比例缩小是不可避免的。在这项工作中,我们使用La0.325Pr0.3Ca0.375MnO3(LPCMO)单晶盘来研究空间限制对EPS的影响。具有铁磁金属相和电荷序绝缘相共存的EPS状态似乎是块状,薄膜和大磁盘中的低温基态,以前无法识别的基态(即,较小的磁盘中出现了一个铁磁相态) 。临界尺寸在500 nm至800 nm之间,这与LPCMO系统中EPS的特征长度尺度相似。在自旋电子学应用中非常需要在锰矿纳米盘中产生纯铁磁相的能力。

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