Study on backward stimulated Brillouin scattering of chalcogenide inverted-ridge optical waveguide with air slot

None Yang Xi-fei, None Shang Lei, None Zou Lin-er, None Shen Yun
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Abstract

The stimulated Brillouin scattering (SBS) effect has the advantage of narrow spectral line width, frequency stability, and sensitivity to gain direction, which is commonly used in the field of integrated photonic devices, such as lasers, slow light generation and microwave photonic filters. In practical applications, due to the low gain coefficient of SBS in traditional chalcogenide waveguides, there are high threshold of pumping power and long waveguide length. In this paper, a inverted-ridge waveguide structure with air slot is designed by adopting As2S3 and SiO2 materials, which presents high backward stimulated Brillouin scattering (BSBS) gain coefficient. This chalcogenide inverted-ridge optical waveguide with air slot can better confine the optical and acoustic fields within the ridge region for improving the coupling efficiency between optical and acoustic fields. More significantly, adding an air slot in the ridge region of this chalcogenide waveguide will produce powerful radiation pressure at the boundary between the air slot and As2S3. Owing to the fact that the acoustic field is mainly distributed near the air slot in the ridge region, the coupling effect of the radiation pressure and acoustic field is significantly enhanced, leading to a significant increase in BSBS gain coefficient. In this paper, the optical fundamental mode as optical mode due to the chalcogenide waveguide with submicron size structure and the six lowest order acoustic modes that meet the matching vector conditions as acoustic mode are calculated, and it is found that the fifth order acoustic mode achieves the maximum BSBS gain coefficient among the six acoustic modes. On this basis, by scanning the waveguide structural parameters of the air slot width, waveguide ridge width & height, and waveguide thickness, the BSBS gain coefficient is as high as 8.22×104 W-1·m-1, which is more than three times the currently reported chalcogenide waveguide with non-suspended structure. Additionally, the calculation results also indicate that this chalcogenide waveguide with a smaller effective mode field area has a higher BSBS gain coefficient in the same optical and acoustic mode, providing a new idea for further improving the BSBS gain coefficient in the design of waveguide structures. At the same time, the impact of optical loss on BSBS gain is also analyzed, and it is found that when the waveguide length exceeds the optimal value, the lost energy caused by the optical loss will be beyond the input energy of the pump optical wave, causing the power of the stokes optical wave to begin to decrease; However, the improvement of the power of pump optical wave not only increases the maximum power of the stokes optical wave, but also rises the optimal value of the waveguide length; The results of simulation calculation have shown that when the input power of pump optical wave is about 20 mW, this chalcogenide waveguide with the only 2 cm waveguide length has the BSBS gain of 100 dB, which has advantage of low pumping power and short waveguide length in the current reported on-chip integration of chalcogenide waveguides.
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含气槽硫系反脊光波导的后向受激布里渊散射研究
受激布里渊散射(SBS)效应具有谱线宽度窄、频率稳定、对增益方向敏感等优点,常用于集成光子器件领域,如激光器、慢光产生和微波光子滤波器等。在实际应用中,由于传统硫系波导中SBS的增益系数低,存在抽运功率阈值高、波导长度长的问题。本文采用As<sub>2</sub>S<sub>3</sub>和SiO< sub> 2 & lt; / sub>材料,具有较高的后向受激布里渊散射(BSBS)增益系数。这种带气槽的硫系反脊光波导能更好地将光声场限制在脊区,提高光声场耦合效率。更重要的是,在硫族波导的脊区增加一个气隙,将在气隙与As<sub>2</sub>S<sub>3</sub>之间的边界处产生强大的辐射压力。由于声场主要分布在脊区空气槽附近,辐射压力与声场的耦合效应显著增强,导致BSBS增益系数显著增大。本文计算了基于亚微米尺寸结构的硫族波导的光基模作为光模,以及满足匹配矢量条件的6种最低阶声模作为声模,发现5阶声模在6种声模中获得了最大的BSBS增益系数。在此基础上,通过对波导结构参数的扫描,得到了空气槽宽度、波导脊宽和;高度,波导厚度,BSBS增益系数高达8.22×10<sup>4</sup>W<sup>-1</sup>·m<sup>-1</sup>,是目前报道的非悬浮结构硫系波导的三倍以上。此外,计算结果还表明,该有效模场面积较小的硫系波导在相同的光声模式下具有较高的BSBS增益系数,为波导结构设计中进一步提高BSBS增益系数提供了新的思路。同时,还分析了光损耗对BSBS增益的影响,发现当波导长度超过最优值时,光损耗造成的能量损失将超过泵浦光波的输入能量,导致斯托克斯光波的功率开始下降;然而,泵浦光波功率的提高不仅提高了斯托克斯光波的最大功率,而且提高了波导长度的最优值;仿真计算结果表明,当泵浦光波输入功率约为20 mW时,该硫族波导波导波导长度仅为2 cm,其BSBS增益为100 dB,在目前报道的片上集成硫族波导中具有泵浦功率小、波导长度短的优点。
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