Chang Zeshan, Chiang Kin Seng
Opt Lett. 2019 Aug 1;44(15):3685-3688. doi: 10.1364/OL.44.003685.
We present an analysis of all-optical loss modulation in a graphene-buried waveguide based on the Pauli blocking effect. We show that, to realize effective loss modulation, both the signal light and the co-propagating control light must be polarized along the direction parallel to graphene's surface, and the loss-modulation efficiency is given by the ratio of the loss coefficients of the signal light and the control light. To demonstrate the principle, we fabricate two polymer waveguide samples, one with a 0.6-mm-long graphene film buried in the center of the waveguide core and the other with a 10.0-mm-long graphene film placed on the top surface of the core. We achieve a loss modulation to 1550-nm signal light from 5.0 dB to 0.4 dB with a 980-nm control power varying from 6.5 dBm to 12. 5 dBm for the first sample, and from 8.0 dB to 0.5 dB with a control power varying from 14.5 dBm to 19.5 dBm for the second sample. The experimental results agree well with the theoretical analysis. A graphene-buried waveguide offers much flexibility as a platform for the realization of all-optical devices, such as optical switches, optical samplers, and optically tunable attenuators.
我们基于泡利阻塞效应,对石墨烯埋入型波导中的全光损耗调制进行了分析。我们表明,为实现有效的损耗调制,信号光和同向传播的控制光都必须沿平行于石墨烯表面的方向偏振,且损耗调制效率由信号光与控制光的损耗系数之比给出。为演示该原理,我们制作了两个聚合物波导样品,一个在波导芯中心埋入了0.6毫米长的石墨烯薄膜,另一个在芯的顶表面放置了10.0毫米长的石墨烯薄膜。对于第一个样品,当980纳米控制功率在6.5分贝毫瓦至12.5分贝毫瓦之间变化时,我们实现了将1550纳米信号光的损耗从5.0分贝调制到0.4分贝;对于第二个样品,当控制功率在14.5分贝毫瓦至19.5分贝毫瓦之间变化时,实现了从8.0分贝到0.5分贝的损耗调制。实验结果与理论分析吻合良好。石墨烯埋入型波导作为实现诸如光开关、光采样器和光可调衰减器等全光器件的平台,具有很大的灵活性。