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Reconfigurable magnetoelectronic circuits for threshold logic

机译:可重新配置的磁电子电路,用于阈值逻辑

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Magnetoelectronic devices, which combine ferromagnetic materials with conventional silicon structures, offer the potential to add non-volatile storage to electronic systems, eliminating their vulnerability to data loss due to power supply interruptions. We present a set of circuits, based on the Hybrid Hall Effect device, that combine logic with non-volatile storage. These circuits can be configured on a cycle-by-cycle basis to compute different functions of their inputs, store their outputs indefinitely even in the absence of system power, and can be easily integrated into CMOS systems to provide non-volatile operation without requiring additional supply voltages or other global signals. They exploit the properties of the Hybrid Hall Effect device to efficiently implement threshold logic functions and thereby reduce the number of gates required to implement most Boolean expressions. In this paper, we describe our reconfigurable magnetoelectronic circuits and the interfaces that make them compatible with CMOS systems. The results presented are based on data from fabricated experimental devices, and we discuss how they can be expected to improve as devices scale to nanometer dimensions. Finally, we consider how magnetoelectronic circuits might be integrated into system designs to deliver high performance while tolerating power supply interruptions.
机译:磁电子设备将铁磁材料与常规硅结构结合在一起,具有为电子系统增加非易失性存储的潜力,从而消除了由于电源中断而导致数据丢失的脆弱性。我们提出了一组基于混合霍尔效应器件的电路,这些电路将逻辑与非易失性存储相结合。这些电路可以逐周期配置,以计算其输入的不同功能,即使在没有系统电源的情况下也可以无限期地存储其输出,并且可以轻松集成到CMOS系统中以提供非易失性操作而无需其他操作电源电压或其他全局信号。他们利用混合霍尔效应器件的特性来有效地实现阈值逻辑功能,从而减少了实现大多数布尔表达式所需的门数。在本文中,我们描述了可重配置的磁电子电路以及使它们与CMOS系统兼容的接口。给出的结果基于来自制造的实验装置的数据,我们讨论了如何期望随着装置缩放到纳米尺寸而改善。最后,我们考虑如何将磁电子电路集成到系统设计中,以在承受电源中断的同时提供高性能。

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