Bridging the gap between nanomagnetic devices and circuits

M. Niemier, X. Hu, A. Dingler, M. Alam, G. Bernstein, W. Porod
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引用次数: 18

Abstract

This paper looks at designing circuit elements that will be constructed with nanoscale magnets within the Quantum-dot Cellular Automata (QCA) computational paradigm. In magnetic QCA (MQCA) logical operations and dataflow are accomplished by manipulating the polarizations of nanoscale magnets. Wires and gates have already been experimentally demonstrated at room temperature. However, to realize more complex circuits - and eventually systems - more than just wires and gates in isolation are required. For example, gates must be inter-connected, signals must cross, etc. All structures must be controlled by the envisioned drive circuitry. In this paper, structures that will facilitate these circuit-level tasks are presented for the first time.
弥合纳米磁性器件和电路之间的差距
本文着眼于设计电路元件,将与量子点元胞自动机(QCA)计算范式内的纳米级磁铁构建。在磁性QCA (MQCA)中,逻辑运算和数据流是通过操纵纳米级磁体的极化来完成的。导线和栅极已经在室温下进行了实验证明。然而,要实现更复杂的电路——以及最终的系统——需要的不仅仅是隔离的电线和门。例如,门必须相互连接,信号必须交叉等。所有结构必须由设想的驱动电路控制。在本文中,将有助于这些电路级任务的结构首次提出。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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