A standard cell approach for MagnetoElastic NML circuits

Davide Giri, M. Vacca, G. Causapruno, Wenjing Rao, M. Graziano, M. Zamboni
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引用次数: 11

Abstract

Among emerging technologies Quantum dot Cellular Automata (QCA) plays a fundamental role. Its magnetic version, normally called NanoMagnet Logic (NML), is particularly interesting thanks to the ability to work at room temperature and to mix logic and memory in the same device. Magnetic circuits have also a potential very low power consumption. Unfortunately classic NML circuits are normally driven (clocked) with a current generating a clocked magnetic field, nullifying the possibility to actually obtain low power circuits. We have recently developed a technology-friendly solution, the MagnetoElastic NML (ME-NML), where magnetic circuits are driven through an electric field, and not with a current, drastically reducing the power consumption. In this paper we start to explore the architectural consequences of this new magnetic technology. The analysis is performed using as a benchmark a Galois multiplier, a systolic architecture particularly suited for QCA and NML technologies. The layout is precisely described and the resulting circuit is modeled and simulated using VHDL language. The obtained results are remarkable. The circuit area is reduced by 4 times compared to classic NML approach. This, coupled with the intrinsic lower power consumption due to different clock, leads to a 50 times reduction of power absorption. Moreover the particular structure of magnetoelastic NML allows to define a library of standard cells that can be easily used by designers and automatic layout tools to design circuits, greatly improving future research in this field.
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磁弹性NML电路的标准单元方法
在新兴技术中,量子点元胞自动机(QCA)起着基础性的作用。它的磁性版本通常被称为纳米磁体逻辑(NML),由于能够在室温下工作并将逻辑和存储器混合在同一设备中,因此特别有趣。磁路还具有极低功耗的潜力。不幸的是,经典的NML电路通常是由产生时钟磁场的电流驱动的(时钟),从而消除了实际获得低功耗电路的可能性。我们最近开发了一种技术友好的解决方案,即MagnetoElastic NML (ME-NML),其中磁路通过电场驱动,而不是电流,从而大大降低了功耗。在本文中,我们开始探索这种新磁性技术的架构后果。分析使用伽罗瓦乘法器作为基准执行,伽罗瓦乘法器是一种特别适合于QCA和NML技术的收缩架构。对电路布局进行了精确描述,并用VHDL语言对电路进行了建模和仿真。所得结果是显著的。与传统的NML方法相比,电路面积减少了4倍。这一点,再加上由于不同的时钟固有的较低的功耗,导致功率吸收减少50倍。此外,磁弹性NML的特殊结构允许定义一个标准单元库,可以很容易地被设计人员和自动布局工具用于设计电路,极大地促进了该领域的未来研究。
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