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Magnonic Spin-Transfer Torque MRAM With Low Power, High Speed, and Error-Free Switching

机译:具有低功耗,高速和无差错切换的磁自旋传递扭矩MRAM

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摘要

A new class of spin-transfer torque magnetic random access memory (STT-MRAM) is discussed, in which writing is achieved using thermally initiated magnonic current pulses as an alternative to conventional electric current pulses. The magnonic pulses are used to destabilize the magnetic free layer from its initial direction, and are followed immediately by a bipolar electric current exerting conventional spin-transfer torque on the free layer. The combination of thermal and electric currents greatly reduces switching errors, and simultaneously reduces the electric switching current density by more than an order of magnitude as compared to conventional STT-MRAM. The energy efficiency of several possible electro-thermal circuit designs have been analyzed numerically. As compared to STT-MRAM with perpendicular magnetic anisotropy, magnonic STT-MRAM reduces the overall switching energy by almost 80%. Furthermore, the lower electric current density allows the use of thicker tunnel barriers, which should result in higher tunneling magneto-resistance and improved tunnel barrier reliability. The combination of lower power, improved reliability, higher integration density, and larger read margin make magnonic STT-MRAM a promising choice for future non-volatile storage.
机译:讨论了新型的自旋转移矩磁性随机存取存储器(STT-MRAM),其中使用热启动的磁流脉冲代替传统的电流脉冲来实现写入。磁脉冲用于使磁性自由层从其初始方向不稳定,并且紧随其后是在自由层上施加常规自旋转移扭矩的双极电流。与常规STT-MRAM相比,热电流和电流的组合极大地减少了开关误差,同时将开关电流密度降低了一个数量级以上。已经对几种可能的电热电路设计的能量效率进行了数值分析。与具有垂直磁各向异性的STT-MRAM相比,强磁STT-MRAM将总开关能量降低了近80%。此外,较低的电流密度允许使用较厚的隧道势垒,这将导致较高的隧道磁阻和改善的隧道势垒可靠性。更低的功耗,更高的可靠性,更高的集成密度和更大的读取余量的结合,使强磁STT-MRAM成为了未来非易失性存储的有前途的选择。

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