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Non-majority magnetic logic gates: A review of experiments and future prospects for 'shape-based' logic

机译:非多数磁性逻辑门:“基于形状的”逻辑的实验和未来展望的回顾

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We discuss the experimental demonstration of non-majority, two-input, nanomagnet logic (NML) AND and OR gates. While gate designs still can incorporate the symmetric, rounded-rectangle magnets used in the three-input majority gate experiments by Imre (2006 Science 311 205-8), our new designs also leverage magnets with an edge that has a well-defined 'slant'. In rectangular and ellipsoid nanomagnets, the easy axis of the device coincides with its longer edge. For a magnet with a slanted edge, the easy and hard axes are 'tilted', and magnetic fields applied along the (geometrical) hard axis alone can set the easy axis magnetization state. This switching phenomenon can be employed to realize NML Boolean logic gates with both reduced footprints and critical path delays. Experimental demonstrations of two-input AND and OR gates are supported by corresponding micromagnetic simulations with temperature effects associated with a 300 K environment. Simulations suggest that the time evolution of experimentally demonstrated structures is correct, and that designs can also tolerate clock field misalignment. Additionally, simulations suggest that a slanted-edge 'compute magnet' can (i) be driven by two anti-ferromagnetically ordered lines of NML devices (for input) and (ii) drive an anti- ferromagnetically ordered line (for output). Both are essential if slanted-edge devices are to be used in NML circuits. We conclude with a discussion of extensibility and scaling prospects for shape-based computation with nanomagnets.
机译:我们讨论了非多数两输入纳米磁铁逻辑(NML)AND和OR门的实验演示。虽然门设计仍可以包含Imre(2006 Science 311 205-8)的三输入多数门实验中使用的对称,圆角矩形磁体,但我们的新设计还利用了边缘清晰的“倾斜”磁体。 '。在矩形和椭圆形纳米磁铁中,设备的易轴与较长的边缘重合。对于具有倾斜边缘的磁体,易轴和硬轴是“倾斜的”,仅沿(几何)硬轴施加的磁场可以设置易轴磁化状态。这种切换现象可用于实现NML布尔逻辑门,同时减少占位面积和关键路径延迟。通过与300 K环境相关的温度效应的相应微磁模拟来支持两输入与门或或门的实验演示。仿真表明,实验证明的结构的时间演化是正确的,并且设计还可以容忍时钟场未对准。另外,仿真表明,可以(i)由NML设备的两条反铁磁有序线(用于输入)驱动倾斜的“计算磁体”,以及(ii)驱动反铁磁有序线(用于输出)驱动。如果要在NML电路中使用斜边器件,则两者都是必不可少的。最后,我们讨论了基于形状的纳米磁体计算的可扩展性和缩放前景。

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