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A Tunable Majority Gate-Based Full Adder Using Current-Induced Domain Wall Nanomagnets

机译:基于电流感应域壁纳米磁体的可调谐多数基于门的全加法器

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Domain wall nanomagnet (DWNM)-based devices have been extensively studied as a promising alternative to the conventional CMOS technology in both the memory and logic implementations due to their non-volatility, near-zero standby power, and high integration density characteristics. In this paper, we leverage a physics-based model of a DWNM device to design a highly scalable current-mode majority gate to achieve a novel one bit full-adder (FA) circuit. The modeled DWNM specifications are calibrated with the experimentally measured data. The functionality of the proposed DWNM-based FA (DWNM-FA) is verified using a SPICE circuit simulator. The detailed analysis and the calculations have been performed to realize the proposed DWNM-FA delay and power consumption corresponding to the various induced input currents at different operating temperatures. The power-delay product of DWNM-FA is examined to tune the operation within the optimum induced input current region to obtain desired power-delay requirements over a range of 200 $mu text{A}$ to 1 mA at temperatures from 298 to 378 K. Finally, the comparison results exhibit 52% and 49% area improvement as well as 41% and 31% improvement in device count complexity over CMOS-based and magnetic tunnel junction-based FA designs, respectively.
机译:基于畴壁纳米磁铁(DWNM)的设备具有非易失性,接近零的待机功耗和高集成密度等特性,已在内存和逻辑实现中被广泛研究为可替代传统CMOS技术的有前途的替代品。在本文中,我们利用DWNM器件的基于物理学的模型来设计高度可扩展的电流模式多数门,以实现新颖的一位全加法器(FA)电路。建模的DWNM规格已通过实验测量的数据进行了校准。使用SPICE电路模拟器验证了所提出的基于DWNM的FA(DWNM-FA)的功能。已经进行了详细的分析和计算,以实现建议的DWNM-FA延迟和功耗,这些延迟和功耗对应于在不同工作温度下的各种感应输入电流。检查DWNM-FA的功率延迟乘积,以在最佳感应输入电流区域内调整操作,以在298至378的温度下,在200μmu至1mA的范围内获得所需的功率延迟要求K.最后,与基于CMOS和基于磁隧道结的FA设计相比,比较结果分别显示出52%和49%的面积改进以及器件数量复杂度的41%和31%的改进。

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