Department of Electrical and Systems Engineering, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Department of Chemistry, University of Pennsylvania, Philadelphia, PA, 19104, USA.
Nat Commun. 2023 May 8;14(1):2649. doi: 10.1038/s41467-023-38189-y.
Strong light-matter interactions in localized nano-emitters placed near metallic mirrors have been widely reported via spectroscopic studies in the optical far-field. Here, we report a near-field nano-spectroscopic study of localized nanoscale emitters on a flat Au substrate. Using quasi 2-dimensional CdSe/CdZnS nanoplatelets, we observe directional propagation on the Au substrate of surface plasmon polaritons launched from the excitons of the nanoplatelets as wave-like fringe patterns in the near-field photoluminescence maps. These fringe patterns were confirmed via extensive electromagnetic wave simulations to be standing-waves formed between the tip and the edge-up assembled nano-emitters on the substrate plane. We further report that both light confinement and in-plane emission can be engineered by tuning the surrounding dielectric environment of the nanoplatelets. Our results lead to renewed understanding of in-plane, near-field electromagnetic signal transduction from the localized nano-emitters with profound implications in nano and quantum photonics as well as resonant optoelectronics.
在远离光场的光学光谱研究中,已经广泛报道了置于金属镜附近的局域纳米发射器中的强光物质相互作用。在这里,我们报告了在平坦的 Au 衬底上局域纳米发射器的近场纳米光谱研究。使用准二维 CdSe/CdZnS 纳米板,我们观察到从纳米板激子发射的表面等离激元在 Au 衬底上的定向传播,表现为近场光致发光图谱中的波状条纹图案。通过广泛的电磁波模拟,这些条纹图案被证实为在基底平面上的尖端和边缘向上组装的纳米发射器之间形成的驻波。我们进一步报告说,通过调整纳米板周围的介电环境,可以对光限制和平面内发射进行工程设计。我们的研究结果导致了对平面内近场电磁信号从局域纳米发射器的转换的重新理解,这对纳米和量子光子学以及共振光电学具有深远的意义。