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A 6.5-GHz Cryogenic All-Pass Filter Circulator in 40-nm CMOS for Quantum Computing Applications

机译:用于量子计算应用的40nm CMOS 6.5GHz低温全通滤波器循环器

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Cryogenic solid-state quantum processors require classical control and readout electronics; to achieve compactness and scalability, cryogenic integrated circuits have been recently proposed for this goal. Circulators are widely used in readout circuits, however they are typically discrete bulky devices, thus preventing miniaturization. To address this issue, we propose a fully integrated 40-nm CMOS 6.5-GHz circulator operating from 300 K to 4.2 K. At 300 K, it achieves a 2.2-dB insertion loss, an 18-dB isolation, and a 2.4-dB noise figure over the 1-dB bandwidth from 5.6 GHz to 7.4 GHz, with a core power of only 2.5 mW. This improves to 2.1 mW core power at 4.2 K, while showing 1.3-dB insertion loss and 17-dB isolation over the 1-dB bandwidth from 5.8 GHz to 7.6 GHz. The circuit achieves a record-low core power and a 1.6× wider fractional bandwidth than the state-of-the-art, thus allowing its use for multiple channels in power-constrained cryogenic refrigerators. These advances are enabled by a fully-passive architecture based on LC all-pass filters, allowing the use of a lower clock frequency than in prior art.
机译:低温固态量子处理器需要经典的控制和读出电子设备。为了实现紧凑性和可扩展性,最近已经提出了用于该目标的低温集成电路。循环器广泛用于读出电路中,但是它们通常是离散的笨重设备,因此会阻止小型化。为了解决这个问题,我们建议使用300K至4.2K的全集成40nm CMOS 6.5GHz环行器。在300K时,它实现2.2dB的插入损耗,18dB的隔离度和2.4dB的隔离度。在5.6 GHz至7.4 GHz的1-dB带宽内,噪声系数仅为2.5 mW。在4.2 K时,内核功率提高到2.1 mW,同时在5.8 GHz至7.6 GHz的1 dB带宽上显示出1.3 dB的插入损耗和17 dB的隔离度。与最新技术相比,该电路可实现创纪录的低核心功率和1.6倍的分数带宽,因此可用于功率受限的低温冰箱的多个通道。这些进步通过基于LC全通滤波器的全无源架构得以实现,从而允许使用比现有技术更低的时钟频率。

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