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M2CS: A microwave measurement and control system for large-scale superconducting quantum processors

J. ZHANG 张, Xuandong 炫东 Sun 孙, Zechen 泽臣 Guo 郭, Yuefeng 跃峰 Yuan 袁, Yubin 玉斌 Zhang 张, Ji 继 Chu 储, Wenhui 文辉 Huang 黄, Y. Liang 梁, Jiawei 嘉威 Qiu 邱, Daxiong 大雄 Sun 孙, Ziyu 子予 Tao 陶, Jiajian 家健 Zhang 张, Weijie 伟杰 Guo 郭, J. Jiang 蒋, Xiayu 彭夏雨 Linpeng 林, Y. Liu 刘, Wenhui 文慧 Ren 任, Jingjing 晶晶 Niu 牛, Y. Zhong 钟, Dapeng 大鹏 Yu 俞·August 21, 2024·DOI: 10.1088/1674-1056/ad8a49
Physics

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Abstract

As superconducting quantum computing continues to advance at an unprecedented pace, there is a compelling demand for the innovation of specialized electronic instruments that act as crucial conduits between quantum processors and host computers. Here, we introduce a microwave measurement and control system (M2CS) dedicated to large-scale superconducting quantum processors. M2CS features a compact modular design that balances overall performance, scalability and flexibility. Electronic tests of M2CS show key metrics comparable to commercial instruments. Benchmark tests on transmon superconducting qubits further show qubit coherence and gate fidelities comparable to state-of-the-art results, confirming M2CS’s capability to meet the stringent requirements of quantum experiments running on intermediate-scale quantum processors. The compact and scalable nature of our design holds the potential to support over 1000 qubits after upgrade in stability and integration. The M2CS architecture may also be adopted to a wider range of scenarios, including other quantum computing platforms such as trapped ions and silicon quantum dots, as well as more traditional applications like microwave kinetic inductance detectors and phased array radar systems.

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