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A low-noise and high-stability DC source for superconducting quantum circuits

Daxiong 大雄 Sun 孙, J. ZHANG 张, Peisheng 培生 Huang 黄, Yubin 玉斌 Zhang 张, Zechen 泽臣 Guo 郭, T. Chen 陈, R. Wang 王, Xuandong 炫东 Sun 孙, Jiajian 家健 Zhang 张, Wenhui 文辉 Huang 黄, Jiawei 嘉威 Qiu 邱, Ji 继 Chu 储, Ziyu 子予 Tao 陶, Weijie 伟杰 Guo 郭, Xiayu 彭夏雨 Linpeng 林, J. Jiang 蒋, Jingjing 晶晶 Niu 牛, Y. Zhong 钟, Dapeng 大鹏 Yu 俞·May 1, 2025·DOI: 10.1088/1674-1056/ade1c5
Physics

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Abstract

With the rapid scaling of superconducting quantum processors, electronic control systems relying on commercial off-the-shelf instruments face critical bottlenecks in signal density, power consumption, and crosstalk mitigation. Here we present a custom dual-channel direct current (DC) source module (QPower) dedicated to large-scale superconducting quantum processors. The module delivers a voltage range of ±7 V with 200 mA maximum current per channel, while achieving the following key performance benchmarks: noise spectral density of 20 nV/ Hz at 10 kHz, output ripple <500 μVpp within 20 MHz bandwidth, and long-term voltage drift <5 μVpp over 12 hours. Integrated into the control electronics of a 66-qubit quantum processor, QPower enables qubit coherence time of T1 = 87.6 μs and Ramsey dephasing time of T2 = 5.1 μs, with qubit resonance frequency drift constrained to ±40 kHz during 12-hour operation. This modular design is compact in size and efficient in energy consumption, providing a scalable DC source solution for intermediate-scale quantum processors with stringent noise and stability requirements, with potential extensions to other quantum hardware platforms and precision measurement systems.

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