Paoletta Angela L, Hoffmann Norah M, Cheng Daniel W, York Emma, Xu Ding, Zhang Boyuan, Delor Milan, Berkelbach Timothy C, Venkataraman Latha
Department of Chemistry, Fairfield University, Fairfield, Connecticut 06824, United States.
J Am Chem Soc. 2024 Dec 18;146(50):34394-34400. doi: 10.1021/jacs.4c09782. Epub 2024 Dec 4.
Single molecules bridging two metallic electrodes can emit light through electroluminescence when subjected to a bias voltage. Typically, light emission in such devices results from transitions between molecular states, although in the presence of light-matter coupling, the emission can result from a transition between hybrid light-matter states. Here, we create single metal-molecule-metal junctions and simultaneously collect conductance and electroluminescence data using a scanning tunneling microscope (STM) equipped with a custom spectrometer. Through experimental analysis and electronic structure calculations, we provide evidence for a molecule-electrode interfacial exciton coupled to a junction cavity plasmon. Importantly, we find that close to resonant transport conditions, the molecular junction functions as a single emitter that is strongly coupled to the junction cavity mode, leading to characteristic Rabi splitting of the emission spectrum and providing the first example of an electroluminescence-driven single-molecule system in the regime of strong light-matter coupling.
当受到偏置电压时,连接两个金属电极的单分子可通过电致发光发光。通常,此类器件中的发光源于分子态之间的跃迁,不过在存在光与物质耦合的情况下,发光可源于混合光与物质态之间的跃迁。在此,我们创建了单金属 - 分子 - 金属结,并使用配备定制光谱仪的扫描隧道显微镜(STM)同时收集电导和电致发光数据。通过实验分析和电子结构计算,我们为耦合到结腔等离子体激元的分子 - 电极界面激子提供了证据。重要的是,我们发现接近共振传输条件时,分子结作为一个与结腔模强耦合的单发射器起作用,导致发射光谱出现特征性的拉比分裂,并提供了强光与物质耦合 regime 中电致发光驱动的单分子系统的首个示例。