论文标题

接口皮秒和纳秒量子光脉冲

Interfacing picosecond and nanosecond quantum light pulses

论文作者

Sośnicki, Filip, Mikołajczyk, Michał, Golestani, Ali, Karpiński, Michał

论文摘要

Light是一个关键的信息载体,通过电信光纤网络实现了全球高速数据传输。通过在单个光子(飞行Qubits)中对其进行编码,可以将这种信息携带能力扩展到传输量子信息(QI)。但是,各种Qi处理平台在截然不同的时间范围内运行。原子介质中的QI处理单元,在纳秒内到微秒内部的时间表,而在Picsecond TimeScales上,由于时间尺度不匹配的数量级不匹配,在Picsecond TimeScales上进行了高速量子通信,或者是光谱线路宽。在这项工作中,我们使用复杂的高带宽电容相调制来开发一个大孔的时间镜头,以弥合这一间隙。我们证明了量子光脉冲对量子脉冲的相干,确定的光谱带宽压缩,并具有高效率的两个以上的数量级。它将通过连接超快和准连续波实验平台来促进大规模混合QI处理,到目前为止,该平台在很大程度上一直在独立发展。

Light is a key information carrier, enabling worldwide high-speed data transmission through a telecommunication fibre network. This information-carrying capacity can be extended to transmitting quantum information (QI) by encoding it in single photons -- flying qubits. However, various QI-processing platforms operate at vastly different timescales. QI-processing units in atomic media, operating within nanosecond to microsecond timescales, and high-speed quantum communication, at picosecond timescales, cannot be efficiently linked due to orders of magnitude mismatch in the timescales or, correspondingly, spectral linewidths. In this work, we develop a large-aperture time lens using complex high-bandwidth electro-optic phase modulation to bridge this gap. We demonstrate coherent, deterministic spectral bandwidth compression of quantum light pulses by more than two orders of magnitude with high efficiency. It will facilitate large-scale hybrid QI-processing by linking the ultrafast and quasi-continuous-wave experimental platforms, which until now, to a large extent, have been developing independently.

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