物理
放大器
量子位元
量子点
约瑟夫森效应
晶体管
噪音(视频)
参量振荡器
参数统计
动电感
电容
量子
CMOS芯片
电感
超导电性
光电子学
凝聚态物理
量子力学
计算机科学
电压
图像(数学)
电极
统计
人工智能
数学
作者
Laurence Cochrane,Theodor Lundberg,David J. Ibberson,Lisa Ibberson,Louis Hutin,Benoît Bertrand,N. A. Stelmashenko,Jason W. A. Robinson,M. Vinet,Ashwin A. Seshia,M. Fernando González-Zalba
标识
DOI:10.1103/physrevlett.128.197701
摘要
Josephson parametric amplifiers (JPAs) approaching quantum-limited noise performance have been instrumental in enabling high fidelity readout of superconducting qubits and, recently, semiconductor quantum dots (QDs). We propose that the quantum capacitance arising in electronic two-level systems (the dual of Josephson inductance) can provide an alternative dissipationless nonlinear element for parametric amplification. We experimentally demonstrate phase-sensitive parametric amplification using a QD-reservoir electron transition in a CMOS nanowire split-gate transistor embedded in a 1.8 GHz superconducting lumped-element microwave cavity, achieving parametric gains of -3 to +3 dB, limited by Sisyphus dissipation. Using a semiclassical model, we find an optimized design within current technological capabilities could achieve gains and bandwidths comparable to JPAs, while providing complementary specifications with respect to integration in semiconductor platforms or operation at higher magnetic fields.
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