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Achieving large and nonvolatile tunable magnetoresistance in organic spin valves using electronic phase separated manganites

机译:使用电子相分离的锰矿在有机旋转阀中实现大而非易失性的可调磁阻

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摘要

Tailoring molecular spinterface between novel magnetic materials and organic semiconductors offers promise to achieve high spin injection efficiency. Yet it has been challenging to achieve simultaneously a high and nonvolatile control of magnetoresistance effect in organic spintronic devices. To date, the largest magnetoresistance (~300% at T = 10 K) has been reached in tris-(8-hydroxyquinoline) aluminum (Alq3)-based organic spin valves (OSVs) using La0.67Sr0.33MnO3 as a magnetic electrode. Here we demonstrate that one type of perovskite manganites, i.e., a (La2/3Pr1/3)5/8Ca3/8MnO3 thin film with pronounced electronic phase separation (EPS), can be used in Alq3-based OSVs to achieve a large magnetoresistance (MR) up to 440% at T = 10 K and a typical electrical Hanle effect as the Hallmark of the spin injection. The contactless magnetic field-controlled EPS enables us to achieve a nonvolatile tunable MR response persisting up to 120 K. Our study suggests a new route to design high performance multifunctional OSV devices using electronic phase separated manganites.
机译:在新型磁性材料和有机半导体之间定制分子界面,有望实现高自旋注入效率。然而,同时实现有机自旋电子器件中的磁阻效应的高且非易失性控制一直是挑战。迄今为止,使用La0.67Sr0.33MnO3作为磁性电极的三(8-羟基喹啉)铝(Alq3)基有机自旋阀(OSV)已达到最大的磁阻(在T = 10 K时约为300%)。在这里,我们证明了一种钙钛矿型锰铁矿,即具有明显电子相分离(EPS)的(La2 / 3Pr1 / 3)5 / 8Ca3 / 8MnO3薄膜,可以用于基于Alq3的OSV中以实现大的磁阻( MR)在T = 10 K时高达440%,典型的电Hanle效应是自旋注入的标志。非接触磁场控制的EPS使我们能够实现高达120 K的非易失性可调MR响应我们的研究提出了一种使用电子相分离锰矿设计高性能多功能OSV器件的新途径。

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