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Thermoelectric Spin-Transfer Torque MRAM With Fast Bidirectional Writing Using Magnonic Current

机译:利用磁流快速双向写入的热电自旋转矩MRAM

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摘要

In this paper, a new genre of spin-transfer torque (STT) MRAM is proposed, in which bidirectional writing is achieved using thermoelectrically controlled magnonic current as an alternative to conventional electric current. The device uses a magnetic tunnel junction (MTJ), which is adjacent to a nonmagnetic metallic and a ferrite film. This film stack is heated or cooled by a Peltier element, which creates a bidirectional magnonic pulse in the ferrite film. Conversion of magnons to spin current occurs at the ferrite–metal interface, and the resulting STT is used to achieve fast ( $sim$nanosecond) precessional switching of the ferromagnetic free layer in the MTJ. Compared to the electric-current-driven STT–MRAM with perpendicular magnetic anisotropy (PMA), thermoelectric STT–MRAM reduces the overall magnetization switching energy by more than 40% for nanosecond switching, combined with a write error rate (WER) of less than 10$^{-9}$ and a lifetime of ten years or higher. The combination of higher thermal activation energy, subnanosecond read/write speed, improved tunneling magnetoresistance (TMR), and tunnel barrier reliability make thermoelectric STT–MRAM a promising choice for future nonvolatile memory applications.
机译:在本文中,提出了一种新的自旋传递扭矩(STT)MRAM类型,其中使用热电控制的大电流代替传统电流来实现双向写入。该器件使用磁性隧道结(MTJ),该隧道邻近非磁性金属和铁氧体膜。该膜叠堆由珀耳帖元件加热或冷却,该元件在铁氧体膜中产生双向磁脉冲。磁振子到自旋电流的转换发生在铁氧体-金属界面,并且所产生的STT用于实现快速( $ sim $ 纳秒)MTJ中铁磁自由层的进动切换。与具有垂直磁各向异性(PMA)的电流驱动STT–MRAM相比,热电STT–MRAM对于纳秒级开关将总磁化开关能量降低了40%以上,同时写入错误率(WER)小于10 $ ^ {-9} $ ,寿命为十年或更长。较高的热活化能,亚纳秒的读/写速度,改进的隧穿磁阻(TMR)和隧穿势垒可靠性相结合,使热电STT-MRAM成为未来非易失性存储应用的有希望的选择。

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