Lu Wenzheng, Menezes Leonardo de S, Tittl Andreas, Ren Haoran, Maier Stefan A
Chair in Hybrid Nanosystems, Nano-Institute Munich, Faculty of Physics, Ludwig-Maximilians-Universität München, 80539 Munich, Germany.
Departamento de Física, Universidade Federal de Pernambuco, 50670-901 Recife-PE, Brazil.
Nanophotonics. 2023 Dec 25;13(1):39-49. doi: 10.1515/nanoph-2023-0562. eCollection 2024 Jan.
Active metasurfaces provide unique advantages for on-demand light manipulation at a subwavelength scale for emerging visual applications of displays, holographic projectors, optical sensors, light detection and ranging (LiDAR). These applications put stringent requirements on switching speed, cycling duration, electro-optical controllability, modulation contrast, optical efficiency and operation voltages. However, previous demonstrations focus only on particular subsets of these key performance requirements for device implementation, while the other performance metrics have remained too low for any practical use. Here, we demonstrate an active Huygens' metasurface based on conductive polyaniline (PANI), which can be grown and optimized on the metasurface. We have achieved simultaneously on the active metasurface switching speed of 60 frame per second (fps), switching duration of more than 2000 switching cycles without noticeable degradation, hysteresis-free controllability over intermediate states, modulation contrast of over 1400 %, optical efficiency of 28 % and operation voltage range within 1 V. Such PANI-powered active metasurface design can be readily incorporated into other metasurface concepts to deliver high-reliability electrical control over its optical response, paving the way for compact and robust electro-optic metadevices.
有源超表面为新兴的显示器、全息投影仪、光学传感器、光探测与测距(LiDAR)等视觉应用在亚波长尺度上进行按需光操纵提供了独特优势。这些应用对开关速度、循环持续时间、电光可控性、调制对比度、光学效率和工作电压提出了严格要求。然而,先前的演示仅关注器件实现中这些关键性能要求的特定子集,而其他性能指标对于任何实际应用来说仍然过低。在此,我们展示了一种基于导电聚苯胺(PANI)的有源惠更斯超表面,其可以在超表面上生长并优化。我们在有源超表面上同时实现了60帧每秒(fps)的开关速度、超过2000个开关周期的开关持续时间且无明显退化、对中间状态的无滞后可控性、超过1400%的调制对比度、28%的光学效率以及1V以内的工作电压范围。这种由聚苯胺驱动的有源超表面设计可以很容易地融入其他超表面概念中,以实现对其光学响应的高可靠性电气控制,为紧凑且坚固的电光超器件铺平了道路。