de Gaay Fortman Nelson, Krause Georg-Michael, Schall Peter, Koenderink A Femius
Institute of Physics, University of Amsterdam, 1098 XH, Amsterdam, The Netherlands.
Department of Physics of Information in Matter and Center for Nanophotonics, NWO-I Institute AMOLF, Science Park 104, 1098 XG, Amsterdam, The Netherlands.
Nanophotonics. 2025 May 22;14(13):2317-2329. doi: 10.1515/nanoph-2025-0085. eCollection 2025 Jun.
Passive reflective metasurfaces can possess perfect absorption conditions: Singular scattering anomalies at which all impinging light is absorbed. Perfect absorption is a common yet powerful metasurface design option with applications in energy harvesting, sensing, and more. Less common is the inclusion of optical gain to the system, which can give rise to a singular condition for perfect amplification. We analyze absorption and amplification singularities in plasmon antenna metasurface etalons with gain with a simple transfer matrix model. Our etalon follows the Salisbury screen design: A metal ground plate spaced by dielectric medium from an array of resonant plasmonic scatterers. We include frequency dispersive models for gain media and discuss the limitations of time reversal symmetry arguments for relating gain singularity conditions (reflectivity poles) to the well-known perfect absorption conditions (reflectivity zeros) of metasurface etalons. We show that for metasurface etalons with both gain and loss, gain can induce both perfect absorption and gain singularities, and we describe topological constraints on their creation and annihilation. Our findings have implications for the fields of non-Hermitian photonics, parity-time symmetric scattering systems, and dynamically controllable active metasurface pixels.
即存在奇异散射异常情况,此时所有入射光都被吸收。完美吸收是一种常见且强大的超表面设计选项,在能量收集、传感等领域有应用。较少见的是在系统中加入光学增益,这会产生完美放大的奇异条件。我们用一个简单的传输矩阵模型分析了带有增益的等离子体天线超表面标准具中的吸收和放大奇异点。我们的标准具遵循萨利斯伯里屏设计:一块金属接地平板通过电介质与一排共振等离子体散射体隔开。我们纳入了增益介质的频率色散模型,并讨论了将增益奇异条件(反射率极点)与超表面标准具的著名完美吸收条件(反射率零点)相关联的时间反演对称性论证的局限性。我们表明,对于既有增益又有损耗的超表面标准具,增益既能诱导完美吸收奇异点,也能诱导增益奇异点,并且我们描述了它们产生和湮灭的拓扑约束。我们的发现对非厄米光子学、宇称 - 时间对称散射系统以及动态可控有源超表面像素领域有影响。