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Current-limiting challenges for all-spin logic devices

机译:全旋转逻辑器件的限流挑战

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All-spin logic device (ASLD) has attracted increasing interests as one of the most promising post-CMOS device candidates, thanks to its low power, non-volatility and logic-in-memory structure. Here we investigate the key current-limiting factors and develop a physics-based model of ASLD through nano-magnet switching, the spin transport properties and the breakdown characteristic of channel. First, ASLD with perpendicular magnetic anisotropy (PMA) nano-magnet is proposed to reduce the critical current ( I c0 ). Most important, the spin transport efficiency can be enhanced by analyzing the device structure, dimension, contact resistance as well as material parameters. Furthermore, breakdown current density ( J BR ) of spin channel is studied for the upper current limitation. As a result, we can deduce current-limiting conditions and estimate energy dissipation. Based on the model, we demonstrate ASLD with different structures and channel materials (graphene and copper). Asymmetric structure is found to be the optimal option for current limitations. Copper channel outperforms graphene in term of energy but seriously suffers from breakdown current limit. By exploring the current limit and performance tradeoffs, the optimization of ASLD is also discussed. This benchmarking model of ASLD opens up new prospects for design and implementation of future spintronics applications.
机译:由于其低功耗,非易失性和内存逻辑结构,全旋转逻辑器件(ASLD)作为最有前途的后CMOS器件候选之一吸引了越来越多的兴趣。在这里,我们研究关键的限流因素,并通过纳米磁体开关,自旋输运性质和沟道的击穿特性,建立了基于物理的ASLD模型。首先,提出了一种具有垂直磁各向异性(PMA)纳米磁体的ASLD,以减小临界电流(I c0 )。最重要的是,可以通过分析器件的结构,尺寸,接触电阻以及材料参数来提高自旋传输效率。此外,研究了自旋通道的击穿电流密度(J BR )以限制电流上限。结果,我们可以推导限流条件并估计能量耗散。基于该模型,我们演示了具有不同结构和通道材料(石墨烯和铜)的ASLD。发现不对称结构是电流限制的最佳选择。铜通道在能量方面优于石墨烯,但严重受到击穿电流限制的困扰。通过探索电流限制和性能折衷,还讨论了ASLD的优化。 ASLD的基准测试模型为未来自旋电子学应用的设计和实施开辟了新的前景。

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