J. Steidle, M. Fanto, C. Tison, Zihao Wang, P. Alsing, S. Preble
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引用次数: 3
Abstract
Presented here are results on a silicon ring resonator photon pair source with a high heralding efficiency. Previous ring resonator sources suffered from an effective 50% loss because, in order to generate the photons, the pump must be able to couple into the resonator which is an effective loss channel. However, in practice the optical loss of the pump can be traded off for a dramatic increase in heralding efficiency. This research found theoretically that the heralding efficiency should increase by a factor of ∼ 3:75 with a factor of 10 increase in the required pump power. This was demonstrated experimentally by varying the separation (gap) between the input waveguide and the ring while maintaining a constant drop port gap. The ring (R = 18:5μm, W = 500nm, and H = 220nm) was pumped by a tunable laser (λ ≈ 1550nm). The non-degenerate photons, produced via spontaneous four wave mixing, exited the ring and were coupled to fiber upon which they were filtered symmetrically about the pump. Coincidence counts were collected for all possible photon path combinations (through and drop port) and the ratio of the drop port coincidences to the sum of the drop port and cross term coincidences (one photon from the drop port and one from the through port) was calculated. With a 350nm pump waveguide gap (2:33 times larger than the drop port gap) we confirmed our theoretical predictions, with an observed improvement in heralding efficiency by a factor of ∼ 2:61 (96:7% of correlated photons coupled out of the drop port). These results will enable increased photon flux integrated photon sources which can be utilized for high performance quantum computing and communication systems.
本文介绍了一种具有高预告效率的硅环谐振腔光子对源的研究结果。以前的环形谐振器源遭受50%的有效损耗,因为为了产生光子,泵浦必须能够耦合到谐振器中,这是一个有效的损耗通道。然而,在实践中,泵的光损失可以交换为显着增加的预示效率。研究结果表明,从理论上讲,如果泵的功率增加10倍,预示效率将增加3倍至75倍。实验证明了这一点,通过改变输入波导和环之间的分离(间隙),同时保持恒定的滴口间隙。利用λ≈1550nm的可调谐激光泵浦环形(R = 18:5μm, W = 500nm, H = 220nm)。通过自发的四波混合产生的非简并光子,退出环并耦合到光纤上,它们在光纤上围绕泵对称过滤。收集所有可能的光子路径组合(通过和丢弃端口)的巧合计数,并计算丢弃端口巧合与丢弃端口和交叉项巧合之和的比率(一个光子来自丢弃端口和一个光子来自通过端口)。使用350nm泵浦波导间隙(比滴口间隙大2:33倍),我们证实了我们的理论预测,并观察到预兆效率提高了约2:61(96:7%的相关光子从滴口耦合出来)。这些结果将使集成光子源的光子通量增加,可用于高性能量子计算和通信系统。