Investigating the Individual Performances of Coupled Superconducting Transmon Qubits

IF 1.9 Q3 PHYSICS, CONDENSED MATTER Condensed Matter Pub Date : 2023-03-21 DOI:10.3390/condmat8010029
H. G. Ahmad, Caleb Jordan, Roald van den Boogaart, Daan Waardenburg, Christos Zachariadis, P. Mastrovito, Asen Lyubenov Georgiev, D. Montemurro, G. Pepe, Marten Arthers, A. Bruno, F. Tafuri, O. Mukhanov, M. Arzeo, D. Massarotti
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引用次数: 1

Abstract

The strong requirement for high-performing quantum computing led to intensive research on novel quantum platforms in the last decades. The circuital nature of Josephson-based quantum superconducting systems powerfully supports massive circuital freedom, which allowed for the implementation of a wide range of qubit designs, and an easy interface with the quantum processing unit. However, this unavoidably introduces a coupling with the environment, and thus to extra decoherence sources. Moreover, at the time of writing, control and readout protocols mainly use analogue microwave electronics, which limit the otherwise reasonable scalability in superconducting quantum circuits. Within the future perspective to improve scalability by integrating novel control energy-efficient superconducting electronics at the quantum stage in a multi-chip module, we report on an all-microwave characterization of a planar two-transmon qubits device, which involves state-of-the-art control pulses optimization. We demonstrate that the single-qubit average gate fidelity is mainly limited by the gate pulse duration and the quality of the optimization, and thus does not preclude the integration in novel hybrid quantum-classical superconducting devices.
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耦合超导Transmon量子比特的个体性能研究
在过去的几十年里,对高性能量子计算的强烈需求导致了对新型量子平台的深入研究。基于约瑟夫逊的量子超导系统的电路性质有力地支持了巨大的电路自由度,这允许实现广泛的量子位设计,并与量子处理单元轻松接口。然而,这不可避免地引入了与环境的耦合,从而引入了额外的退相干源。此外,在撰写本文时,控制和读出协议主要使用模拟微波电子学,这限制了超导量子电路的合理可扩展性。从未来的角度来看,为了通过在多芯片模块中集成量子级的新型控制高能超导电子器件来提高可扩展性,我们报道了平面双传输量子比特器件的全微波特性,其中涉及最先进的控制脉冲优化。我们证明,单量子比特平均栅极保真度主要受到栅极脉冲持续时间和优化质量的限制,因此不排除在新型混合量子经典超导器件中集成。
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来源期刊
Condensed Matter
Condensed Matter PHYSICS, CONDENSED MATTER-
CiteScore
2.90
自引率
11.80%
发文量
58
审稿时长
10 weeks
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