单通量量子电路技术和CAD概述

C. Fourie
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引用次数: 7

摘要

单通量量子(SFQ)电子电路起源于1985年快速单通量量子(RSFQ)逻辑的出现,此后发展到包括更节能的技术,如ERSFQ和eSFQ。基于量子化磁通脉冲操作的SFQ逻辑电路已被证明运行在超过120ghz的时钟速度下,并且比特开关能量低于1aj。小型SFQ微处理器已经开发出来,但SFQ电路固有的特性和缺乏电路设计工具阻碍了大型SFQ系统的发展。SFQ电路的特性包括扇出和随后对脉冲分路器的需求、门级时钟、对磁场的敏感性以及对门内和门间电感的敏感性。超导互连以光速传播数据脉冲,但会受到过孔反射的影响,从而衰减传输的脉冲。最近启动的IARPA超级工具计划旨在提供SFQ计算机辅助设计(CAD)工具,该工具可以成功设计64位RISC处理器,给定SFQ电路的特性。讨论了SFQ电路的技术和最先进的SFQ制造工艺,重点介绍了SFQ电路的设计、布局和验证的独特电子设计自动化CAD要求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Single Flux Quantum Circuit Technology and CAD overview
Single Flux Quantum (SFQ) electronic circuits originated with the advent of Rapid Single Flux Quantum (RSFQ) logic in 1985 and have since evolved to include more energy-efficient technologies such as ERSFQ and eSFQ. SFQ logic circuits, based on the manipulation of quantized flux pulses, have been demonstrated to run at clock speeds in excess of 120 GHz, and with bit-switch energy below 1 aJ. Small SFQ microprocessors have been developed, but characteristics inherent to SFQ circuits and the lack of circuit design tools have hampered the development of large SFQ systems. SFQ circuit characteristics include fan-out of one and the subsequent demand for pulse splitters, gate-level clocking, susceptibility to magnetic fields and sensitivity to intra-gate and inter-gate inductance. Superconducting interconnects propagate data pulses at the speed of light, but suffer from reflections at vias that attenuate transmitted pulses. The recently started IARPA SuperTools program aims to deliver SFQ Computer-Aided Design (CAD) tools that can enable the successful design of 64 bit RISC processors given the characteristics of SFQ circuits. A discussion on the technology of SFQ circuits and the most modern SFQ fabrication processes is presented, with a focus on the unique electronic design automation CAD requirements for the design, layout and verification of SFQ circuits.
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