Verlekar Sachin, Sanz-Paz Maria, Zapata-Herrera Mario, Pilo-Pais Mauricio, Kołątaj Karol, Esteban Ruben, Aizpurua Javier, Acuna Guillermo P, Galland Christophe
Institute of Physics, Ecole Polytechnique Fédérale de Lausanne (EPFL), 1015 Lausanne, Switzerland.
Department of Physics, University of Fribourg, 1700 Fribourg, Switzerland.
ACS Nano. 2025 Jan 28;19(3):3172-3184. doi: 10.1021/acsnano.4c09829. Epub 2025 Jan 11.
Controlling the light emitted by individual molecules is instrumental to a number of advanced nanotechnologies ranging from super-resolution bioimaging and molecular sensing to quantum nanophotonics. Molecular emission can be tailored by modifying the local photonic environment, for example, by precisely placing a single molecule inside a plasmonic nanocavity with the help of DNA origami. Here, using this scalable approach, we show that commercial fluorophores may experience giant Purcell factors and Lamb shifts, reaching values on par with those recently reported in scanning tip experiments. Engineering of plasmonic modes enables cavity-mediated fluorescence far detuned from the zero-phonon-line (ZPL)─at detunings that are up to 2 orders of magnitude larger than the fluorescence line width of the bare emitter and reach into the near-infrared. Our results point toward a regime where the emission line width can become dominated by the excited-state lifetime, as required for indistinguishable photon emission, bearing relevance to the development of nanoscale, ultrafast quantum light sources and to the quest toward single-molecule cavity QED. In the future, this approach may also allow the design of efficient quantum emitters at infrared wavelengths, where standard organic sources have a reduced performance.
控制单个分子发出的光对于从超分辨率生物成像、分子传感到量子纳米光子学等多种先进纳米技术至关重要。分子发射可以通过改变局部光子环境来进行调控,例如,借助DNA折纸技术将单个分子精确地放置在等离子体纳米腔内。在此,我们利用这种可扩展的方法表明,商用荧光团可能会经历巨大的珀塞尔因子和兰姆位移,其值与最近在扫描探针实验中报道的相当。等离子体模式的工程设计能够实现与零声子线(ZPL)相差甚远的腔介导荧光——失谐量比裸发射体的荧光线宽大两个数量级以上,且延伸至近红外区域。我们的结果指向一种情况,即发射线宽可能由激发态寿命主导,这是不可区分光子发射所必需的,与纳米级超快量子光源的发展以及单分子腔量子电动力学的探索相关。未来,这种方法还可能允许设计红外波长的高效量子发射体,而在该波长下标准有机光源的性能会降低。