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Anti-Hermitian photodetector facilitating efficient subwavelength photon sorting

机译:防赫米特光检测器,可有效进行亚波长光子分选

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The ability to split an incident light beam into separate wavelength bands is central to a diverse set of optical applications, including imaging, biosensing, communication, photocatalysis, and photovoltaics. Entirely new opportunities are currently emerging with the recently demonstrated possibility to spectrally split light at a subwavelength scale with optical antennas. Unfortunately, such small structures offer limited spectral control and are hard to exploit in optoelectronic devices. Here, we overcome both challenges and demonstrate how within a single-layer metafilm one can laterally sort photons of different wavelengths below the free-space diffraction limit and extract a useful photocurrent. This chipscale demonstration of anti-Hermitian coupling between resonant photodetector elements also facilitates near-unity photon-sorting efficiencies, near-unity absorption, and a narrow spectral response (~?30?nm) for the different wavelength channels. This work opens up entirely new design paradigms for image sensors and energy harvesting systems in which the active elements both sort and detect photons.
机译:将入射光束分成单独的波段的能力对于多种光学应用至关重要,包括成像,生物传感,通信,光催化和光伏技术。目前,随着使用光天线在亚波长范围内对光进行光谱分离的可能性,全新的机遇正在涌现。不幸的是,这样的小结构提供了有限的光谱控制,并且很难在光电设备中使用。在这里,我们克服了这两个挑战,并展示了如何在单层超膜中如何横向分类低于自由空间衍射极限的不同波长的光子并提取有用的光电流。谐振光电检测器元件之间的反赫耳米特耦合的这种芯片级演示还有助于提高不同波长通道的近统一光子分选效率,近统一吸收和窄光谱响应(约30?nm)。这项工作为图像传感器和能量收集系统开辟了全新的设计范例,其中有源元件既可以分类又可以检测光子。

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