论文标题
低功率可重新配置和减少了由飞秒激光微加工制造的集成光子电路中的串扰
Low power reconfigurability and reduced crosstalk in integrated photonic circuits fabricated by femtosecond laser micromachining
论文作者
论文摘要
飞秒激光写作是一种强大的技术,可以快速且具有成本效益的光子集成电路,具有独特的三维几何形状。特别是,通过热光相变重新配置此类设备的可能性代表了最重要的特征,该功能被利用以产生适应性和可编程电路。但是,可伸缩性受到当前热相变的缺陷的强烈限制,这需要数百毫米才能运行并表现出较大的热串扰。在这项工作中,利用热胰岛素的三维微观结构来降低2π相移到37 MW所需的功率,并将串扰降低到几个百分比。当真空运行,亚米瓦特功率耗散和可忽略不计的串扰时,证明了进一步的改善。这些结果为通过飞秒激光写作制造的复杂可编程的光子电路的证明铺平了道路,从而打开了综合量子光子学的激动人心的观点。
Femtosecond laser writing is a powerful technique that allows rapid and cost-effective fabrication of photonic integrated circuits with unique three-dimensional geometries. In particular, the possibility to reconfigure such devices by thermo-optic phase shifters represents a paramount feature, exploited to produce adaptive and programmable circuits. However, the scalability is strongly limited by the flaws of current thermal phase shifters, which require hundreds of milliwatts to operate and exhibit large thermal crosstalk. In this work, thermally-insulating three-dimensional microstructures are exploited to decrease the power needed to induce a 2π phase shift down to 37 mW and to reduce the crosstalk to a few percent. Further improvement is demonstrated when operating in vacuum, with sub-milliwatt power dissipation and negligible crosstalk. These results pave the way towards the demonstration of complex programmable integrated photonic circuits fabricated by femtosecond laser writing, thus opening exciting perspectives in integrated quantum photonics.