Continuous wideband microwave-to-optical converter based on room-temperature Rydberg atoms

IF 32.3 1区 物理与天体物理 Q1 OPTICS Nature Photonics Pub Date : 2023-10-05 DOI:10.1038/s41566-023-01295-w
Sebastian Borówka, Uliana Pylypenko, Mateusz Mazelanik, Michał Parniak
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Abstract

The coupling of microwave and optical systems presents an immense challenge due to the natural incompatibility of energies, but potential applications range from optical interconnects for quantum computers to next-generation quantum microwave sensors, detectors and coherent imagers. Several of the engineered platforms that have emerged are constrained by specific conditions, such as cryogenic environments, impulse protocols or narrowband fields. Here we employ Rydberg atoms that allow the wideband coupling of optical and microwave photons at room temperature with the use of a modest set-up. We present continuous-wave conversion of a 13.9 GHz field to a near-infrared optical signal using an ensemble of Rydberg atoms via a free-space six-wave mixing process designed to minimize noise interference from any nearby frequencies. The Rydberg photonic converter exhibits a conversion dynamic range of 57 dB and a wide conversion bandwidth of 16 MHz. Using photon counting, we demonstrate the readout of photons of free-space 300 K thermal background radiation at 1.59 nV cm−1 rad−1/2 s−1/2 (3.98 nV cm−1 Hz−1/2) with a sensitivity down to 3.8 K of noise-equivalent temperature, allowing us to observe Hanbury Brown and Twiss interference of microwave photons. Continuous-wave conversion of a 13.9 GHz field to a near-infrared optical signal is demonstrated by using Rydberg atoms at room temperature. The conversion bandwidth is 16 MHz and the conversion dynamic range is 57 dB, descending down to 3.8 K noise-equivalent temperature.

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基于室温雷德堡原子的连续宽带微波-光学转换器
由于能量的天然不兼容性,微波和光学系统的耦合是一个巨大的挑战,但其潜在应用范围却很广,从量子计算机的光学互连到下一代量子微波传感器、探测器和相干成像仪。已经出现的一些工程平台受到特定条件的限制,如低温环境、脉冲协议或窄带场。在这里,我们采用了雷德堡原子,只需使用适度的装置,就能在室温下实现光学和微波光子的宽带耦合。我们通过自由空间六波混频过程,将 13.9 GHz 场连续波转换为近红外光信号。雷德堡光子转换器的转换动态范围为 57 dB,转换带宽为 16 MHz。通过光子计数,我们演示了以 1.59 nV cm-1 rad-1/2 s-1/2 (3.98 nV cm-1 Hz-1/2)的灵敏度读出自由空间 300 K 热背景辐射的光子,灵敏度低至 3.8 K 的噪声等效温度,从而使我们能够观察到微波光子的汉伯里-布朗干涉和特维斯干涉。利用室温下的雷德堡原子,演示了 13.9 GHz 场到近红外光信号的连续波转换。转换带宽为 16 MHz,转换动态范围为 57 dB,降到 3.8 K 的噪声等效温度。
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来源期刊
Nature Photonics
Nature Photonics 物理-光学
CiteScore
54.20
自引率
1.70%
发文量
158
审稿时长
12 months
期刊介绍: Nature Photonics is a monthly journal dedicated to the scientific study and application of light, known as Photonics. It publishes top-quality, peer-reviewed research across all areas of light generation, manipulation, and detection. The journal encompasses research into the fundamental properties of light and its interactions with matter, as well as the latest developments in optoelectronic devices and emerging photonics applications. Topics covered include lasers, LEDs, imaging, detectors, optoelectronic devices, quantum optics, biophotonics, optical data storage, spectroscopy, fiber optics, solar energy, displays, terahertz technology, nonlinear optics, plasmonics, nanophotonics, and X-rays. In addition to research papers and review articles summarizing scientific findings in optoelectronics, Nature Photonics also features News and Views pieces and research highlights. It uniquely includes articles on the business aspects of the industry, such as technology commercialization and market analysis, offering a comprehensive perspective on the field.
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