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Magnetically coupled quantum-flux-latch with wide operation margins

机译:具有宽工作裕度的磁耦合量子通量锁存器

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摘要

We have been developing adiabatic quantum-flux-parametron (AQFP) circuits as an ultra-low-power superconductor logic for energy-efficient computing. In a previous study, we proposed and demonstrated a quantum-flux-latch (QFL), which is a compact and compatible latch for AQFP logic. The QFL is composed of an AQFP buffer gate and a storage loop, which are directly connected to each other. However, the operation margins were not sufficiently wide due to a trade-off between the operation margins of the storage loop and that of the buffer gate. In this present study, we propose a magnetically coupled QFL (MC-QFL), where the storage loop and the buffer gate are physically separated and magnetically coupled to each other to eliminate the trade-off in the operation margins. The simulation results showed that the critical parameter margin of the MC-QFL is twice as large as that of the previously designed QFL. For comparison, we fabricated and demonstrated both the previously designed QFL and the newly designed MC-QFL. The measurement results showed that the MC-QFL has wider operation margins compared with the previously designed QFL.
机译:我们一直在开发绝热量子通量参量(AQFP)电路,作为用于节能计算的超低功耗超导体逻辑。在先前的研究中,我们提出并演示了量子通量锁存器(QFL),它是AQFP逻辑的紧凑且兼容的锁存器。 QFL由彼此直接连接的AQFP缓冲门和存储环路组成。然而,由于存储环路的操作裕度与缓冲门的操作裕度之间的折衷,操作裕度没有足够宽。在本研究中,我们提出了一种磁耦合QFL(MC-QFL),其中存储环路和缓冲门在物理上是分开的,并且彼此磁耦合以消除操作裕度之间的折衷。仿真结果表明,MC-QFL的关键参数裕度是先前设计的QFL的两倍。为了进行比较,我们制作并演示了先前设计的QFL和新设计的MC-QFL。测量结果表明,与先前设计的QFL相比,MC-QFL具有更宽的操作余量。

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