论文标题

音频带中的量子光学麦克风

A Quantum Optical Microphone in the Audio Band

论文作者

Nold, Raphael, Babin, Charles, Schmidt, Joel, Linkewitz, Tobias, Zaballos, María T. Pérez, Stöhr, Rainer, Kolesov, Roman, Vorobyov, Vadim, Lukin, Daniil M., Boppert, Rüdiger, Barz, Stefanie, Vučković, Jelena, Gebhardt, Christof M., Kaiser, Florian, Wrachtrup, Jörg

论文摘要

进行高精度光学测量的能力对于科学和工程至关重要。激光干涉测量法实现了最终受射击噪声限制的精确感的无互动感测。量子光传感器可以超过此限制,但是通过低实验采样率挑战了单个或多光子方案,而挤压光方法则需要复杂的光学设置和复杂的时间门控。在这里,我们介绍了一种简单的方法,该方法可以通过标准强度测量值进行光学相移,同时仍保持测量精度中的量子优势。利用我们设备的稳健性和高采样率,我们在音频频段中实现了量子光学麦克风。在对45名受试者的标准化医学批准的语音识别测试中,它的性能针对经典激光麦克风进行了基准测试。我们发现,量子记录的单词将语音识别阈值提高了$ -0.57 \,\ text {db} _ {\ text {spl}} $,从而使量子优势可听见。这些结果不仅为量子非线性干涉仪的应用打开了大门,而且还表明人类可以经历量子现象。

The ability to perform high-precision optical measurements is paramount to science and engineering. Laser interferometry enables interaction-free sensing with a precision ultimately limited by shot noise. Quantum optical sensors can surpass this limit, but single- or multi-photon schemes are challenged by low experimental sampling rates, while squeezed-light approaches require complex optical setups and sophisticated time gating. Here, we introduce a simple method that infers optical phase shifts through standard intensity measurements while still maintaining the quantum advantage in the measurement precision. Capitalising on the robustness and high sampling rates of our device, we implement a quantum optical microphone in the audio band. Its performance is benchmarked against a classical laser microphone in a standardised medically-approved speech recognition test on 45 subjects. We find that quantum-recorded words improve the speech recognition threshold by $-0.57\, \text{dB}_{\text{SPL}}$, thus making the quantum advantage audible. Not only do these results open the door towards applications in quantum nonlinear interferometry, but they also show that quantum phenomena can be experienced by humans.

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