Tumkur T U, Sokhoyan R, Su M P, Ceballos-Sanchez A, Kafaie Shirmanesh G, Kim Y, Atwater H A, Feigenbaum E, Elhadj S
Opt Express. 2021 Mar 1;29(5):7261-7275. doi: 10.1364/OE.413843.
Nanophotonic materials enable unprecedented control of light-matter interactions, including the ability to dynamically steer or shape wavefronts. Consequently, nanophotonic systems such as metasurfaces have been touted as promising candidates for free-space optical communications, directed energy and additive manufacturing, which currently rely on slow mechanical scanners or electro-optical components for beam steering and shaping. However, such applications necessitate the ability to support high laser irradiances (> kW/cm) and systematic studies on the high-power laser damage performance of nanophotonic materials and designs are sparse. Here, we experimentally investigate the pulsed laser-induced damage performance (at λ ∼ 1 µm) of model nanophotonic thin films including gold, indium tin oxide, and refractory materials such as titanium nitride and titanium oxynitride. We also model the spatio-thermal dissipation dynamics upon single-pulse illumination by anchoring experimental laser damage thresholds. Our findings show that gold exhibits the best laser damage resistance, but we argue that alternative materials such as transparent conducting oxides could be optimized to balance the tradeoff between damage resistance and optical tunability, which is critical for the design of thermally robust nanophotonic systems. We also discuss damage mitigation and ruggedization strategies for future device-scale studies and applications requiring high power beam manipulation.
纳米光子材料能够实现对光与物质相互作用前所未有的控制,包括动态操纵或塑造波前的能力。因此,诸如超表面等纳米光子系统被吹捧为自由空间光通信、定向能和增材制造的有前途的候选者,目前这些领域依靠缓慢的机械扫描仪或电光组件进行光束操纵和整形。然而,此类应用需要具备支持高激光辐照度(>kW/cm)的能力,而关于纳米光子材料和设计的高功率激光损伤性能的系统研究却很少。在此,我们通过实验研究了包括金、氧化铟锡以及诸如氮化钛和氮氧化钛等难熔材料在内的典型纳米光子薄膜的脉冲激光诱导损伤性能(波长约为1µm)。我们还通过确定实验激光损伤阈值来模拟单脉冲照射下的时空热耗散动力学。我们的研究结果表明,金表现出最佳的抗激光损伤性能,但我们认为诸如透明导电氧化物等替代材料可以进行优化,以平衡抗损伤性和光学可调性之间的权衡,这对于热稳定的纳米光子系统的设计至关重要。我们还讨论了针对未来需要高功率光束操纵的器件级研究和应用的损伤减轻及加固策略。