Ferrier L, Bouteyre P, Pick A, Cueff S, Dang N H M, Diederichs C, Belarouci A, Benyattou T, Zhao J X, Su R, Xing J, Xiong Qihua, Nguyen H S
Université Lyon, Ecole Centrale de Lyon, CNRS, INSA Lyon, Université Claude Bernard Lyon 1, CPE Lyon, CNRS, INL, UMR5270, 69130 Ecully, France.
Applied Physics Department, Hebrew University of Jerusalem, Israel.
Phys Rev Lett. 2022 Aug 19;129(8):083602. doi: 10.1103/PhysRevLett.129.083602.
Exceptional points (EPs), singularities of non-Hermitian physics where complex spectral resonances degenerate, are one of the most exotic features of nonequilibrium open systems with unique properties. For instance, the emission rate of quantum emitters placed near resonators with EPs is enhanced (compared to the free-space emission rate) by a factor that scales quadratically with the resonance quality factor. Here, we verify the theory of spontaneous emission at EPs by measuring photoluminescence from photonic-crystal slabs that are embedded with a high-quantum-yield active material. While our experimental results verify the theoretically predicted enhancement, they also highlight the practical limitations on the enhancement due to material loss. Our designed structures can be used in applications that require enhanced and controlled emission, such as quantum sensing and imaging.
例外点(EPs)是非厄米物理中的奇点,复谱共振在该点简并,是具有独特性质的非平衡开放系统最奇特的特征之一。例如,放置在具有例外点的谐振器附近的量子发射器的发射率(与自由空间发射率相比)提高了一个与共振品质因数呈二次方比例的因子。在此,我们通过测量嵌入高量子产率活性材料的光子晶体平板的光致发光来验证例外点处的自发发射理论。虽然我们的实验结果证实了理论预测的增强,但它们也突出了由于材料损耗导致增强的实际限制。我们设计的结构可用于需要增强和可控发射的应用,如量子传感和成像。