Davletkhanov Ayvaz, Mkrtchyan Aram, Bunkov Alexey, Chermoshentsev Dmitry, Shashkov Mikhail, Ilatovskii Daniil, Krasnikov Dmitry, Nasibulin Albert, Gladush Yuriy
Skolkovo Institute of Science and Technology, Moscow 121205, Russia.
Russian Quantum Center, Skolkovo, Moscow 121205, Russia.
Nanophotonics. 2023 Oct 23;12(22):4229-4238. doi: 10.1515/nanoph-2023-0563. eCollection 2023 Nov.
Optical waveguides covered with thin films, which transmittance can be controlled by external action, are widely used in various applications from optical modulators to saturable absorbers. It is natural to suggest that the losses through such a waveguide will be proportional to the absorption coefficient of the covering material. In this letter, we demonstrate that under certain conditions, this simple assumption fails. Instead, we observe that the reduction of the material loss of the film can lead to an increase in the propagation losses through the waveguide. For this, we use a side polished fiber covered with a single-walled carbon nanotube thin film whose absorption can be attenuated either by a short pulse illumination (due to absorption saturation) or with electrochemical gating. For the films thicker than 50 nm, we observe saturable absorption to turn into optical limiting with nonmonotonic dependence on the incident power. With a numerical simulation, we identify that this nontrivial behavior comes from mode reshaping due to changes in the absorption coefficient of the covering film. We demonstrate the applicability of the observed effect by fabricating the device which nonlinear optical response can be controllably switched between saturable absorbing and optical limiting. Finally, we utilize an analytical approach to predict the required parameters and corresponding nontrivial shapes of the nonlinear absorbance curves. These results provide new perspectives for engineering complex reconfigurable nonlinear optical responses and transmittance dependences of nanomaterial covered waveguides.
覆盖有薄膜的光波导,其透过率可通过外部作用进行控制,在从光调制器到可饱和吸收体的各种应用中得到广泛应用。自然而然地会认为,通过这种波导的损耗将与覆盖材料的吸收系数成正比。在这封信中,我们证明在某些条件下,这个简单的假设是不成立的。相反,我们观察到薄膜材料损耗的降低会导致通过波导的传播损耗增加。为此,我们使用一种侧面抛光的光纤,其覆盖有单壁碳纳米管薄膜,该薄膜的吸收可通过短脉冲照明(由于吸收饱和)或电化学门控来衰减。对于厚度大于50纳米的薄膜,我们观察到可饱和吸收转变为光学限幅,且对入射功率具有非单调依赖性。通过数值模拟,我们确定这种非平凡行为源于覆盖薄膜吸收系数变化导致的模式重塑。我们通过制造一种非线性光学响应可以在可饱和吸收和光学限幅之间可控切换的器件,证明了所观察到的效应的适用性。最后,我们利用一种解析方法来预测所需参数以及非线性吸光度曲线的相应非平凡形状。这些结果为设计纳米材料覆盖波导的复杂可重构非线性光学响应和透过率依赖性提供了新的视角。