论文标题

脉冲 - 泵pump磷的纤维拉曼放大器约1260 nm,用于量子非线性光学元件的应用

Pulsed-pump phosphorus-doped fiber Raman amplifier around 1260 nm for applications in quantum non-linear optics

论文作者

Poem, Eilon, Golenchenko, Artem, Davidson, Omri, Arenfrid, Or, Finkelstein, Ran, Firstenberg, Ofer

论文摘要

我们描述了纳秒和亚纳秒脉冲的纤维拉曼放大器,左右左右为1260 nm。扩增发生在4.5米长的极化维护磷的纤维中,以1080 nm乘3 ns长的脉冲泵送,重复速率为200 kHz,高达1.75 kW的峰值功率。输入种子脉冲具有亚MW峰值功率,最小持续时间为0.25 ns,从具有亚MHz线宽的连续波激光雕刻出来。我们获得线性偏振的输出脉冲,峰值功率高达1.4 kW,对应于80%以上的峰值转换效率。实现了90 dB的超高小信号,并且低于饱和功率的信噪比3 dB高于20 dB。对于高达400 W峰值功率的输出脉冲,未观察到明显的时间和光谱拓宽,并且通过种子脉冲的相位调节可以降低较高功率的扩展。因此,获得峰值功率高达1 kW的几乎变换量有限的脉冲。最后,我们演示了具有可控频率呼吸的脉冲,宽度可变的脉冲和双脉冲的产生。因此,该放大器适用于对狭窄的原子共振的相干控制,尤其是对Rydberg状态的Rubidium原子的快速和相干激发。这些能力为量子非线性光学元件中的几个重要应用开辟了道路。

We describe a fiber Raman amplifier for nanosecond and sub-nanosecond pulses centered around 1260 nm. The amplification takes place inside a 4.5-m-long polarization-maintaining phosphorus-doped fiber, pumped at 1080 nm by 3-ns-long pulses with a repetition rate of 200 kHz and up to 1.75 kW peak power. The input seed pulses are of sub-mW peak-power and minimal duration of 0.25 ns, carved off a continuous-wave laser with sub-MHz linewidth. We obtain linearly-polarized output pulses with peak-powers of up to 1.4 kW, corresponding to peak-power conversion efficiency of over 80%. An ultrahigh small-signal-gain of 90 dB is achieved, and the signal-to-noise ratio 3 dB below the saturation power is above 20 dB. No significant temporal and spectral broadening is observed for output pulses up to 400 W peak power, and broadening at higher powers can be reduced by phase modulation of the seed pulse. Thus nearly-transform-limited pulses with peak power up to 1 kW are obtained. Finally, we demonstrate the generation of pulses with controllable frequency chirp, pulses with variable width, and double pulses. This amplifier is thus suitable for coherent control of narrow atomic resonances and especially for the fast and coherent excitation of rubidium atoms to Rydberg states. These abilities open the way towards several important applications in quantum non-linear optics.

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