Amin Mitesh, Koessler Eric R, Morshed Ovishek, Awan Farwa, Cogan Nicole M B, Collison Robert, Tumiel Trevor M, Girten William, Leiter Christopher, Vamivakas A Nickolas, Huo Pengfei, Krauss Todd D
The Institute of Optics, University of Rochester, Rochester, New York 14627, United States.
Department of Chemistry, University of Rochester, Rochester, New York 14627, United States.
ACS Nano. 2024 Aug 13;18(32):21388-21398. doi: 10.1021/acsnano.4c05871. Epub 2024 Jul 30.
Exciton-polaritons provide a versatile platform for investigating quantum electrodynamics effects in chemical systems, such as polariton-altered chemical reactivity. However, using polaritons in chemical contexts will require a better understanding of their photophysical properties under ambient conditions, where chemistry is typically performed. Here, we used cavity quality factor to control strong light-matter interactions and in particular the excited state dynamics of colloidal CdSe nanoplatelets (NPLs) coupled to a Fabry-Pérot optical cavity. With increasing cavity quality factor, we observe significant population of the upper polariton (UP) state, exemplified by the rare observation of substantial UP photoluminescence (PL). Excitation of the lower polariton (LP) states results in upconverted PL emission from the UP branch due to efficient exchange of population between the LP, UP and the reservoir of dark states present in collectively coupled polaritonic systems. In addition, we measure time scales for polariton dynamics ∼100 ps, implying great potential for NPL based polariton systems to affect photochemical reaction rates. State-of-the-art quantum dynamical simulations show outstanding quantitative agreement with experiments, and thus provide important insight into polariton photophysical dynamics of collectively coupled nanocrystal-based systems. These findings represent a significant step toward the development of practical polariton photochemistry platforms.
激子极化激元为研究化学系统中的量子电动力学效应提供了一个通用平台,例如极化激元改变的化学反应性。然而,在化学环境中使用极化激元需要更好地了解它们在通常进行化学实验的环境条件下的光物理性质。在这里,我们利用腔品质因数来控制强光与物质的相互作用,特别是耦合到法布里-珀罗光学腔的胶体CdSe纳米片(NPLs)的激发态动力学。随着腔品质因数的增加,我们观察到上极化激元(UP)态有显著的布居,以罕见地观察到大量的UP光致发光(PL)为例。由于在集体耦合的极化激元系统中,下极化激元(LP)态、UP态和暗态库之间的布居有效交换,LP态的激发导致了来自UP分支的上转换PL发射。此外,我们测量了极化激元动力学的时间尺度约为100 ps,这意味着基于NPL的极化激元系统对光化学反应速率有很大的影响潜力。最新的量子动力学模拟与实验结果显示出出色的定量一致性,从而为集体耦合的基于纳米晶体的系统的极化激元光物理动力学提供了重要的见解。这些发现代表了向实用的极化激元光化学平台发展的重要一步。