论文标题

建模量子计算机上的量子增强感测

Modeling Quantum Enhanced Sensing on a Quantum Computer

论文作者

Tran, Cindy, Narong, Tanaporn Na, Cooper, Eric S.

论文摘要

量子计算机允许直接模拟现代干涉测量实验中使用的量子干扰和纠缠,从生物传感到引力波检测的应用。受激光干涉仪重力波观测站(LIGO)处量子传感的最新发展的启发,我们提出了两个量子电路模型,这些模型证明了量子力学和纠缠在现代精确传感器中的作用。我们使用单个量子器来代表穿过LIGO干涉仪的独立光子,并在IBM量子处理器上实现了这些量子电路,并使用了两个纠缠量子量子,以说明Ligo通过使用非经典光的光状态实现的提高灵敏度。一分干涉仪说明了独立光子测量中的投影噪声如何对应于标准量子限制下的相位灵敏度。在实际量子计算机上存在技术噪声的情况下,该干涉仪的灵敏度高于标准量子限制。两分干涉仪展示了纠缠量如何绕过量子射击噪声所施加的极限,从而达到了比标准量子限制的相位敏感性17 \%。这些实验说明了量子力学在设定新记录中为Ligo等平台上的精确测量的作用。这些实验是可以广泛访问的,可远程可执行的活动,非常适合将本科生介绍到实际量子硬件上的量子计算,错误传播和量子传感。

Quantum computers allow for direct simulation of the quantum interference and entanglement used in modern interferometry experiments with applications ranging from biological sensing to gravitational wave detection. Inspired by recent developments in quantum sensing at the Laser Interferometer Gravitational-wave Observatory (LIGO), here we present two quantum circuit models that demonstrate the role of quantum mechanics and entanglement in modern precision sensors. We implemented these quantum circuits on IBM quantum processors, using a single qubit to represent independent photons traveling through the LIGO interferometer and two entangled qubits to illustrate the improved sensitivity that LIGO has achieved by using non-classical states of light. The one-qubit interferometer illustrates how projection noise in the measurement of independent photons corresponds to phase sensitivity at the standard quantum limit. In the presence of technical noise on a real quantum computer, this interferometer achieves the sensitivity of 11\% above the standard quantum limit. The two-qubit interferometer demonstrates how entanglement circumvents the limits imposed by the quantum shot noise, achieving the phase sensitivity 17\% below the standard quantum limit. These experiments illustrate the role that quantum mechanics plays in setting new records for precision measurements on platforms like LIGO. The experiments are broadly accessible, remotely executable activities that are well suited for introducing undergraduate students to quantum computation, error propagation, and quantum sensing on real quantum hardware.

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