Shaked Yaakov, Michael Yoad, Vered Rafi Z, Bello Leon, Rosenbluh Michael, Pe'er Avi
Department of Physics and BINA Center of Nano-technology, Bar-Ilan University, 52900, Ramat-Gan, Israel.
Nat Commun. 2018 Feb 9;9(1):609. doi: 10.1038/s41467-018-03083-5.
Homodyne measurement is a corner-stone method of quantum optics that measures the quadratures of light-the quantum optical analog of the canonical position and momentum. Standard homodyne, however, suffers from a severe bandwidth limitation: while the bandwidth of optical states can span many THz, standard homodyne is inherently limited to the electronically accessible MHz-to-GHz range, leaving a dramatic gap between relevant optical phenomena and the measurement capability. We demonstrate a fully parallel optical homodyne measurement across an arbitrary optical bandwidth, effectively lifting this bandwidth limitation completely. Using optical parametric amplification, which amplifies one quadrature while attenuating the other, we measure quadrature squeezing of 1.7 dB simultaneously across 55 THz, using the pump as the only local oscillator. As opposed to standard homodyne, our measurement is robust to detection inefficiency, and was obtained with >50% detection loss. Broadband parametric homodyne opens a wide window for parallel processing of quantum information.
零差测量是量子光学的一种基础方法,用于测量光的正交分量——即正则位置和动量的量子光学类似物。然而,标准零差测量存在严重的带宽限制:虽然光态的带宽可以跨越许多太赫兹,但标准零差测量本质上仅限于电子可及的兆赫兹到吉赫兹范围,这使得相关光学现象与测量能力之间存在巨大差距。我们展示了一种在任意光学带宽上进行的全并行光学零差测量,有效地完全消除了这种带宽限制。利用光学参量放大,即放大一个正交分量同时衰减另一个正交分量,我们以泵浦光作为唯一的本地振荡器,在55太赫兹范围内同时测量到了1.7分贝的正交压缩。与标准零差测量不同,我们的测量对探测效率低下具有鲁棒性,并且是在探测损耗超过50%的情况下获得的。宽带参量零差测量为量子信息的并行处理打开了一扇广阔的窗口。