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Nanomagnetic logic: compact modeling of field-coupled computing devices for system investigations

机译:纳米磁逻辑:现场耦合计算设备的紧凑建模,用于系统研究

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In this paper we investigate error rates of nanomagnetic logic devices with perpendicular magnetization by compact modeling. Two different types of nanomagnets for information propagation and logic computing are introduced. The switching behavior of field-coupled nanomagnets is measured and analyzed. A compact model is derived from physics and experimental results are applied to the magnetic compact model. General requirements for fabrication parameters and clocking fields for reliable operation are extracted. We perform simulations and measurements on single devices to demonstrate the accuracy of the macro-model. Simulations on complex systems show that the error rate of a field-coupled magnetic system strongly depends on the variation of the switching field and the strength of the coupling field between the nanomagnets. The error rate of a 1-bit full adder is investigated for varying dot parameters. The results demonstrate the importance of fast simulation tools for investigations on the design of nanomagnetic computing devices and systems.
机译:在本文中,我们通过紧凑模型研究了垂直磁化的纳米磁逻辑器件的错误率。介绍了两种用于信息传播和逻辑计算的纳米磁铁。测量和分析了场耦合纳米磁体的开关行为。紧凑模型是从物理派生而来,并将实验结果应用于磁性紧凑模型。提取了用于可靠操作的制造参数和时钟域的一般要求。我们在单个设备上执行仿真和测量,以证明宏模型的准确性。对复杂系统的仿真表明,场耦合磁系统的错误率在很大程度上取决于开关磁场的变化以及纳米磁体之间耦合场的强度。对于变化的点参数,研究了1位全加法器的错误率。结果证明了快速仿真工具对于研究纳米磁计算设备和系统的设计的重要性。

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