Dorner U, Demkowicz-Dobrzanski R, Smith B J, Lundeen J S, Wasilewski W, Banaszek K, Walmsley I A
Clarendon Laboratory, University of Oxford, Parks Road, Oxford OX1 3PU, UK.
Phys Rev Lett. 2009 Jan 30;102(4):040403. doi: 10.1103/PhysRevLett.102.040403.
By using a systematic optimization approach, we determine quantum states of light with definite photon number leading to the best possible precision in optical two-mode interferometry. Our treatment takes into account the experimentally relevant situation of photon losses. Our results thus reveal the benchmark for precision in optical interferometry. Although this boundary is generally worse than the Heisenberg limit, we show that the obtained precision beats the standard quantum limit, thus leading to a significant improvement compared to classical interferometers. We furthermore discuss alternative states and strategies to the optimized states which are easier to generate at the cost of only slightly lower precision.
通过使用一种系统优化方法,我们确定了具有确定光子数的光量子态,从而在光学双模干涉测量中实现了尽可能高的精度。我们的处理考虑了光子损失这一与实验相关的情况。因此,我们的结果揭示了光学干涉测量精度的基准。尽管这个界限通常比海森堡极限更差,但我们表明所获得的精度超过了标准量子极限,从而与经典干涉仪相比有了显著提高。我们还讨论了与优化态不同的态和策略,这些态和策略生成起来更容易,只是精度略低。