Tripathi Devdutt, Vyas Hardik S, Kumar Sushil, Panda Soumyashree S, Hegde Ravi
Department of Electrical Engineering, IIT Gandhinagar, 382355, India.
Department of ICT, PDEU, Gandhinagar, India.
Nanotechnology. 2023 Sep 28;34(50). doi: 10.1088/1361-6528/acf1a7.
There is now a deep interest in actively reconfigurable nanophotonics as they will enable the next generation of optical devices. Of the various alternatives being explored for reconfigurable nanophotonics, Chalcogenide phase change materials (PCMs) are considered highly promising owing to the nonvolatile nature of their phase change. Chalcogenide PCM nanophotonics can be broadly classified into integrated photonics (with guided wave light propagation) and Meta-optics (with free space light propagation). Despite some early comprehensive reviews, the pace of development in the last few years has shown the need for a topical review. Our comprehensive review covers recent progress on nanophotonic architectures, tuning mechanisms, and functionalities in tunable PCM Chalcogenides. In terms of integrated photonics, we identify novel PCM nanoantenna geometries, novel material utilization, the use of nanostructured waveguides, and sophisticated excitation pulsing schemes. On the meta-optics front, the breadth of functionalities has expanded, enabled by exploring design aspects for better performance. The review identifies immediate, and intermediate-term challenges and opportunities in (1) the development of novel chalcogenide PCM, (2) advance in tuning mechanism, and (3) formal inverse design methods, including machine learning augmented inverse design, and provides perspectives on these aspects. The topical review will interest researchers in further advancing this rapidly growing subfield of nanophotonics.
如今,人们对可主动重构的纳米光子学产生了浓厚兴趣,因为它们将推动下一代光学器件的发展。在为可重构纳米光子学探索的各种替代方案中,硫族化物相变材料(PCM)因其相变的非易失性而被认为极具潜力。硫族化物PCM纳米光子学大致可分为集成光子学(光波导传播)和超光学(自由空间光传播)。尽管早期有一些全面的综述,但过去几年的发展速度表明有必要进行专题综述。我们的全面综述涵盖了可调谐PCM硫族化物在纳米光子结构、调谐机制和功能方面的最新进展。在集成光子学方面,我们确定了新型PCM纳米天线几何结构、新型材料利用、纳米结构波导的使用以及复杂的激发脉冲方案。在超光学方面,通过探索设计方面以实现更好的性能,功能的广度得到了扩展。该综述确定了在(1)新型硫族化物PCM的开发、(2)调谐机制的进展以及(3)形式化逆设计方法(包括机器学习增强逆设计)方面的近期和中期挑战与机遇,并对这些方面提供了观点。这篇专题综述将引起研究人员对进一步推进这个快速发展的纳米光子学子领域的兴趣。