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Spin Hall effect clocking of nanomagnetic logic without a magnetic field

机译:无磁场的纳米磁性逻辑的自旋霍尔效应计时

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Spin-based computing schemes could enable new functionalities beyond those of charge-based approaches. Examples include nanomagnetic logic, where information can be processed using dipole coupled nanomagnets, as demonstrated by multi-bit computing gates. One fundamental benefit of using magnets is the possibility of a significant reduction in the energy per bit compared with conventional transistors. However, so far, practical implementations of nanomagnetic logic have been limited by the necessity to apply a magnetic field for clocking. Although the energy associated with magnetic switching itself could be very small, the energy necessary to generate the magnetic field renders the overall logic scheme uncompetitive when compared with complementary metal-oxide-semiconductor (CMOS) counterparts. Here, we demonstrate a nanomagnetic logic scheme at room temperature where the necessity for using a magnetic field clock can be completely removed by using spin-orbit torques. We construct a chain of three perpendicularly polarized CoFeB nanomagnets on top of a tantalum wire and show that an unpolarized current flowing through the wire can 'clock' the perpendicular magnetization to a metastable state. An input magnet can then drive the nanomagnetic chain deterministically to one of two dipole-coupled states, '2 up 1 down' or '2 down 1 up', depending on its own polarization. Thus, information can flow along the chain, dictated by the input magnet and clocked solely by a charge current in tantalum, without any magnetic field. A three to four order of magnitude reduction in energy dissipation is expected for our scheme when compared with state-of-the-art nanomagnetic logic.
机译:基于自旋的计算方案可以实现超越基于电荷的方法的新功能。例子包括纳米磁逻辑,其中信息可以使用偶极耦合纳米磁铁进行处理,如多位计算门所证明的。与常规晶体管相比,使用磁体的一个基本好处是可以显着降低每位能量。然而,到目前为止,由于需要施加磁场以进行计时,纳米磁逻辑的实际实现受到了限制。尽管与磁开关本身相关的能量可能很小,但与互补金属氧化物半导体(CMOS)相比,产生磁场所需的能量使整个逻辑方案失去了竞争力。在这里,我们演示了一种在室温下的纳米磁逻辑方案,其中通过使用自旋轨道扭矩可以完全消除使用磁场时钟的必要性。我们在钽丝的顶部构造了三个垂直极化的CoFeB纳米磁体链,结果表明,流过金属丝的非极化电流可以将垂直磁化“计时”为亚稳态。输入磁体然后可以根据其自身的极化确定性地将纳米磁链驱动到两个偶极耦合状态之一,即“ 2向上1向下”或“ 2向下1向上”。因此,信息可以沿着链条流动,由输入磁体决定,并且仅由钽中的充电电流提供时钟,而没有任何磁场。与最先进的纳米磁性逻辑相比,我们的方案预计能减少三到四个数量级的能耗。

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