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首页> 外文期刊>Journal of Physics. Condensed Matter >Sensitive singular-phase optical detection without phase measurements with Tamm plasmons
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Sensitive singular-phase optical detection without phase measurements with Tamm plasmons

机译:敏感的奇异相位光学检测没有Tamm Plasmons的相位测量

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Spectrally-tailored interactions of light with material interfaces offer many exciting applications in sensing, photo-detection, and optical energy conversion. In particular, complete suppression of light reflectance at select frequencies accompanied by sharp phase variations in the reflected signal forms the basis for the development of ultra-sensitive singular-phase optical detection schemes such as Brewster and surface plasmon interferometry. However, both the Brewster effect and surface-plasmon-mediated absorption on planar interfaces are limited to one polarization of the incident light and oblique excitation angles, and may have limited bandwidth dictated by the material dielectric index and plasma frequency. To alleviate these limitations, we design narrow-band super-absorbers composed of plasmonic materials embedded into dielectric photonic nanostructures with topologically-protected interfacial Tamm plasmon states. These structures have planar geometry and do not require nanopatterning to achieve perfect absorption of both polarizations of the incident light in a wide range of incident angles, including the normal incidence. Their absorption lines are tunable across a very broad spectral range via engineering of the photon bandstructure of the dielectric photonic nanostructures to achieve reversal of the geometrical phase across the interface with the plasmonic absorber. We outline the design strategy to achieve perfect absorptance in Tamm structures with dissipative losses via conjugate impedance matching. We further demonstrate via modeling how these structures can be engineered to support sharp asymmetric amplitude resonances, which can be used to improve the sensitivity of optical sensors in the amplitude-only detection scheme that does not require use of bulky and expensive ellipsometry equipment.
机译:用材料界面的光谱定制相互作用提供了许多在感测,光检测和光学能转换中的令人兴奋的应用。特别地,在反射信号中伴随着伴随反射信号的尖锐相变的选择频率的完全抑制构成了超敏奇异相位光学检测方案,例如Br​​ewster和表面等离子体干涉测量法的基础。然而,在平面界面上的布鲁斯特效应和表面等离子体介导的吸收限于入射光和倾斜激发角的一个偏振,并且可以具有由材料介质指数和等离子体频率决定的有限带宽。为了减轻这些限制,我们设计由嵌入到介电光子纳米结构的窄带超吸收剂构成,介电光子纳米结构与拓扑保护的界面TAMM等离子体状态。这些结构具有平面的几何形状,不需要纳米透明机构,以在宽范围内的入射角中实现入射光的两种偏振的完美吸收,包括正常发病率。它们的吸收线通过电介质光子纳米结构的光子带结构的工程来调谐非常宽的光谱范围,以在与等离子体吸收器的界面上实现几何相位的逆转。我们概述了设计策略,以通过共轭阻抗匹配实现TAMM结构的完美吸收率。我们进一步通过建模如何设计这些结构来支持尖锐的不对称幅度谐振,这可以用于提高不需要使用庞大和昂贵的椭圆形状设备的幅度检测方案中的光学传感器的灵敏度。

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