论文标题
使用相关测量Qubit的有效温度
Measuring effective temperatures of qubits using correlations
论文作者
论文摘要
纯状态下量子的初始化是量子计算机操作的先决条件。 Qubits通常通过被动热化或使用主动复位协议来冷却其基态来初始化。为了准确量化初始化,需要一个工具来以足够的精度来衡量激发状态人群,因为伪造的激发态人口可能不超过百分之百分比。在这封信中,我们提出了一种新技术,使用两个顺序测量之间的相关性找到量子量的激发态群体。我们使用电路QED平台实验实现了提出的技术,并将其性能与先前开发的技术进行了比较。与其他技术不同,我们的方法不需要高保真读数,也不涉及量子空间之外系统的激发级别。我们通过实验证明了对伪Qubit人群的测量,准确性高达$ 0.01 \%$。这种准确性使我们能够执行量子的“温度光谱”,这有助于阐明折叠的来源。
Initialization of a qubit in a pure state is a prerequisite for quantum computer operation. Qubits are commonly initialized by cooling to their ground states through passive thermalization or by using active reset protocols. To accurately quantify the initialization one requires a tool to measure the excited state population with sufficient accuracy given that the spurious excited state population may not exceed a fraction of a percent. In this Letter we propose a new technique of finding the excited state population of a qubit using correlations between two sequential measurements. We experimentally implement the proposed technique using a circuit QED platform and compare its performance with previously developed techniques. Unlike other techniques, our method does not require high-fidelity readout and does not involve the excited levels of the system outside of the qubit subspace. We experimentally demonstrated measurement of the spurious qubit population with accuracy of up to $0.01\%$. This accuracy enabled us to perform "temperature spectroscopy" of the qubit which helps to shed light on sources of the decoherence.