用于高对比度超快功率限制和光开关的带内偏振元表面

Michele Cotrufo, Jonas H. Krakofsky, Sander A. Mann, Gerhard Boehm, Mikhail A. Belkin, Andrea Alù
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引用次数: 0

摘要

在所有凝聚态系统中,非线性带间偏振元表面支持中红外频率范围内已知最强的超快非线性响应之一。除了谐波产生和频率混合之外,这些非线性还可以根据从强极性耦合到弱极性耦合的定制转换,用于超快光学开关和功率限制。在这里,我们展示了材料和光子纳米结构的协同优化,以实现超快偏振元表面限幅器的大反射对比。该器件基于优化的半导体异质结构材料,可最大限度地减小带间转变线宽,并减少光饱和纳米谐振器的吸收,在实验中实现了 54% 的创纪录高反射对比。我们还讨论了进一步提高这类超快限幅器性能指标的机会,表明使用全介质带间偏振元表面可实际实现高达 94% 的反射对比度。
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Intersubband polaritonic metasurfaces for high-contrast ultra-fast power limiting and optical switching
Nonlinear intersubband polaritonic metasurfaces support one of the strongest known ultrafast nonlinear responses in the mid-infrared frequency range across all condensed matter systems. Beyond harmonic generation and frequency mixing, these nonlinearities can be leveraged for ultrafast optical switching and power limiting, based on tailored transitions from strong to weak polaritonic coupling. Here, we demonstrate synergistic optimization of materials and photonic nanostructures to achieve large reflection contrast in ultrafast polaritonic metasurface limiters. The devices are based on optimized semiconductor heterostructure materials that minimize the intersubband transition linewidth and reduce absorption in optically-saturated nanoresonators, achieving a record-high reflection contrast of 54% experimentally. We also discuss opportunities to further boost the metrics of performance of this class of ultrafast limiters, showing that reflection contrast as high as 94% may be realistically achieved using all-dielectric intersubband polaritonic metasurfaces.
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