Zograf George P, Ryabov Daniil, Rutckaia Viktoria, Voroshilov Pavel, Tonkaev Pavel, Permyakov Dmitry V, Kivshar Yuri, Makarov Sergey V
Department of Physics and Engineering, ITMO University, St. Petersburg 197101, Russia.
Center for Innovation Competence SiLi-Nano, Martin-Luther-University Halle-Wittenberg, 06120 Halle (Saale), Germany.
Nano Lett. 2020 Aug 12;20(8):5786-5791. doi: 10.1021/acs.nanolett.0c01646. Epub 2020 Jul 1.
Resonant dielectric structures have emerged recently as a new platform for subwavelength nonplasmonic photonics. It was suggested and demonstrated that magnetic and electric Mie resonances can enhance substantially many effects at the nanoscale including spontaneous Raman scattering. Here, we demonstrate stimulated Raman scattering (SRS) for isolated crystalline silicon (c-Si) nanoparticles and observe experimentally a transition from spontaneous to stimulated scattering manifested in a nonlinear growth of the signal intensity above a certain pump threshold. At the Mie resonance, the light gets confined into a low volume of the resonant mode with enhanced electromagnetic fields inside the c-Si nanoparticle due to its high refractive index, which leads to an overall strong SRS signal at low pump intensities. Our finding paves the way for the development of efficient Raman nanolasers for multifunctional photonic metadevices.
共振介电结构最近已成为亚波长非等离子体光子学的一个新平台。有人提出并证明,磁米氏共振和电米氏共振可以在纳米尺度上显著增强许多效应,包括自发拉曼散射。在这里,我们展示了孤立晶体硅(c-Si)纳米颗粒的受激拉曼散射(SRS),并通过实验观察到从自发散射到受激散射的转变,这表现为信号强度在某个泵浦阈值以上的非线性增长。在米氏共振时,由于c-Si纳米颗粒的高折射率,光被限制在共振模式的低体积内,其内部的电磁场增强,这导致在低泵浦强度下产生整体较强的SRS信号。我们的发现为开发用于多功能光子超材料器件的高效拉曼纳米激光器铺平了道路。