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Coherent dynamics of a flux qubit coupled to a harmonic oscillator

机译:耦合到谐振子的磁通量子比特的相干动力学

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In the emerging field of quantum computation(1) and quantum information, superconducting devices are promising candidates for the implementation of solid-state quantum bits (qubits). Single-qubit operations(2-6), direct coupling between two qubits(7-10) and the realization of a quantum gate(11) have been reported. However, complex manipulation of entangled states-such as the coupling of a two-level system to a quantum harmonic oscillator, as demonstrated in ion/atom-trap experiments(12,13) and cavity quantum electrodynamics(14)-has yet to be achieved for superconducting devices. Here we demonstrate entanglement between a superconducting flux qubit (a two-level system) and a superconducting quantum interference device (SQUID). The latter provides the measurement system for detecting the quantum states; it is also an effective inductance that, in parallel with an external shunt capacitance, acts as a harmonic oscillator. We achieve generation and control of the entangled state by performing microwave spectroscopy and detecting the resultant Rabi oscillations of the coupled system.
机译:在量子计算(1)和量子信息的新兴领域中,超导设备是实现固态量子位(qubits)的有希望的候选者。已经报道了单量子位运算(2-6),两个量子位之间的直接耦合(7-10)和量子门的实现(11)。然而,如离子/原子阱实验(12,13)和腔量子电动力学(14)所示,纠缠态的复杂操纵(例如将两能级系统耦合到量子谐波振荡器)尚待研究。实现了超导器件。在这里,我们演示了超导通量量子位(两级系统)和超导量子干涉装置(SQUID)之间的纠缠。后者提供了用于检测量子态的测量系统。它也是有效的电感,与外部并联电容并联,可作为谐波振荡器。我们通过执行微波光谱法并检测耦合系统产生的Rabi振荡,来实现对纠缠态的生成和控制。

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