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Beating the classical precision limit with spin-1 Dicke states of more than 10000 atoms

机译:自旋1 Dicke态超过10000个原子打破了经典的精度极限

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摘要

Interferometry is a paradigm for most precision measurements. Using N uncorrelated particles, the achievable precision for a two-mode (two-path) interferometer is bounded by the standard quantum limit (SQL), 1/N, due to the discrete (quanta) nature of individual measurements. Despite being a challenging benchmark, the two-mode SQL has been approached in a number of systems, including the Laser Interferometer Gravitational-Wave Observatory and today’s best atomic clocks. For multimode interferometry, the SQL becomes 1/[(M1)N] using M modes. Higher precision can also be achieved using entangled particles such that quantum noises from individual particles cancel out. In this work, we demonstrate an interferometric precision of 2.421.29+1.76 dB beyond the three-mode SQL, using balanced spin-1 (three-mode) Dicke states containing thousands of entangled atoms. The input quantum states are deterministically generated by controlled quantum phase transition and exhibit close to ideal quality. Our work shines light on the pursuit of quantum metrology beyond SQL.
机译:干涉测量是大多数精度测量的范例。使用N个不相关的粒子,双模(双路径)干涉仪可达到的精度受标准量子极限(SQL)限制, 1 / N ,因为各个测量的离散性(量化)性质。尽管基准测试具有挑战性,但已在许多系统中采用了双模SQL,包括激光干涉仪重力波天文台和当今最好的原子钟。对于多模干涉测量,SQL变为 1 < mo> / [ M - 1 N ] 使用M模式。使用纠缠的粒子也可以实现更高的精度,从而消除了来自各个粒子的量子噪声。在这项工作中,我们演示了 2.4 2 - 1.29 + 1.76 dB超出三模SQL,使用平衡的spin-1(三模)Dicke状态,其中包含成千上万个纠缠的原子。输入的量子态是由受控的量子相变确定性地生成的,并具有接近理想的质量。我们的工作为追求超越SQL的量子计量学锦上添花。

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