几何形状对超导纳米线低温管性能影响的表征与建模

IF 1.7 3区 物理与天体物理 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Applied Superconductivity Pub Date : 2024-12-24 DOI:10.1109/TASC.2024.3521894
Alejandro Simon;Reed Foster;Owen Medeiros;Matteo Castellani;Emma Batson;Karl K. Berggren
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引用次数: 0

摘要

将超导纳米线探测器扩展到更大的阵列通常受到室温读出电缆的限制。由纳米线低温控管构成的低温集成电路可以通过在芯片上进行信号处理来解决这一限制。在这项研究中,我们描述了纳米低温加速器的关键性能指标,以阐明其作为低温集成电路中逻辑元件的潜力,并开发了一个电热模型,将材料参数与器件性能联系起来。我们发现纳米冷冻加速器的性能取决于器件的几何形状,并且权衡与优化增益、抖动和能量消耗有关。我们证明了在氮化铌上制造的纳米冷控管可以在5 ns长的输入脉冲下实现小于210 nA宽的灰色区域,对应的最大可实现增益为48 dB,每次操作的能量耗散小于20 aJ,抖动小于60 ps。
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Characterizing and Modeling the Influence of Geometry on the Performance of Superconducting Nanowire Cryotrons
The scaling of superconducting nanowire detectors to larger arrays is often limited by room-temperature-readout cabling. Cryogenic integrated circuits constructed from nanowire cryotrons, or nanocryotrons, can address this limitation by performing signal processing on chip. In this study, we characterize key performance metrics of the nanocryotron to elucidate its potential as a logical element in cryogenic integrated circuits and develop an electro-thermal model to connect material parameters with device performance. We find that the performance of the nanocryotron depends on the device geometry, and trade-offs are associated with optimizing the gain, jitter, and energy dissipation. We demonstrate that nanocryotrons fabricated on niobium nitride can achieve a grey zone less than 210 nA wide for a 5 ns long input pulse corresponding to a maximum achievable gain of 48 dB, an energy dissipation of less than 20 aJ per operation, and a jitter of less than 60 ps.
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来源期刊
IEEE Transactions on Applied Superconductivity
IEEE Transactions on Applied Superconductivity 工程技术-工程:电子与电气
CiteScore
3.50
自引率
33.30%
发文量
650
审稿时长
2.3 months
期刊介绍: IEEE Transactions on Applied Superconductivity (TAS) contains articles on the applications of superconductivity and other relevant technology. Electronic applications include analog and digital circuits employing thin films and active devices such as Josephson junctions. Large scale applications include magnets for power applications such as motors and generators, for magnetic resonance, for accelerators, and cable applications such as power transmission.
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