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具有量子频率处理器的高维离散傅里叶变换门

High-dimensional discrete Fourier transform gates with a quantum frequency processor.

作者信息

Lu Hsuan-Hao, Lingaraju Navin B, Leaird Daniel E, Weiner Andrew M, Lukens Joseph M

出版信息

Opt Express. 2022 Mar 14;30(6):10126-10134. doi: 10.1364/OE.454677.

Abstract

The discrete Fourier transform (DFT) is of fundamental interest in photonic quantum information, yet the ability to scale it to high dimensions depends heavily on the physical encoding, with practical recipes lacking in emerging platforms such as frequency bins. In this article, we show that d-point frequency-bin DFTs can be realized with a fixed three-component quantum frequency processor (QFP), simply by adding to the electro-optic modulation signals one radio-frequency harmonic per each incremental increase in d. We verify gate fidelity >0.9997 and success probability >0.965 up to d = 10 in numerical simulations, and experimentally implement the solution for d = 3, utilizing measurements with parallel DFTs to quantify entanglement and perform tomography of multiple two-photon frequency-bin states. Our results furnish new opportunities for high-dimensional frequency-bin protocols in quantum communications and networking.

摘要

离散傅里叶变换(DFT)在光子量子信息中具有根本重要性,然而将其扩展到高维的能力在很大程度上取决于物理编码,在诸如频率 bin 等新兴平台上缺乏实用的方法。在本文中,我们表明,d 点频率 bin DFT 可以用一个固定的三组件量子频率处理器(QFP)来实现,只需在电光调制信号中,每增加一个 d 就添加一个射频谐波。我们在数值模拟中验证了直到 d = 10 时门保真度>0.9997 以及成功概率>0.965,并通过利用并行 DFT 的测量来对多个双光子频率 bin 态进行纠缠量化和层析成像,实验实现了 d = 3 的解决方案。我们的结果为量子通信和网络中的高维频率 bin 协议提供了新的机会。

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