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DOE OSTI · 1656922

Spin Rectification and Electrically Controlled Spin Transport in Molecular-Ferroelectrics-Based Spin Valves

Abstract

We report a spin-rectification effect in a spin-valve structure consisting of ferroelectric croconic acid (C 5 H 2 O 5 ) sandwiched between ferromagnetic electrodes La 0.7 Sr 0.3 MnO 3 and Co, which can be switched between a high-resistance (off ) and a low-resistance (on) state by a poling voltage. In the off state, the magnetoresistance (MR) sign reverses with the measurement voltage with a 0.1-V offset, suggesting a spin-rectification behavior, while in the on state the MR remains negative. These observations can be understood in terms of electrically controlled interfacial energy-band alignment either from the electrostatic effect or from the interfacial redox process. In conclusion, the observed spin-rectification effect suggests thepossibility of diodelike devices for spin-polarized current.

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BibTeXRIS

Yin, Yuewei, Jiang, Xuanyuan, Koten, Mark A., Shield, Jeffrey E., Chen, Xuegang, Yun, Yu, N’Diaye, Alpha T., Hong, Xia, Xu, Xiaoshan. 2020-06-04. Spin Rectification and Electrically Controlled Spin Transport in Molecular-Ferroelectrics-Based Spin Valves. https://doi.org/10.1103/physrevapplied.13.064011

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36 MATERIALS SCIENCE↗