Tian Menghan, Li Xiaomiao, Li Zigeng, Zhong Xiaolan
School of Physics, Beihang University, Beijing 100191, China.
J Phys Chem Lett. 2021 May 27;12(20):4944-4950. doi: 10.1021/acs.jpclett.1c01088. Epub 2021 May 19.
Nonradiative energy transfer (NRET) under light-matter strong coupling interaction provides an efficient method to achieve the ultralong-distance and ultrafast energy transfer, which is of significance in realizing remote control chemistry and the real-time dynamic research of biological macromolecules interaction and so on. Here we show that not only can the cavity mode first resonate with the donor to form a cascade hybrid light-matter states to drive energy transfer, when the cavity mode first resonates with the acceptor, it also can enhance the nonradiative energy transfer between the donor and the acceptor. Importantly, although these two strong coupling systems can enhance energy transfer, the polariton-mediated energy transfer mechanism behind these processes is different. By employing the quantum Tavis-Cummings theory, we calculate the time evolution of the mean photon number of each polariton state to analyze the energy transfer effect under different strongly coupled states.
光与物质强耦合相互作用下的非辐射能量转移(NRET)提供了一种实现超长距离和超快能量转移的有效方法,这对于实现远程控制化学以及生物大分子相互作用的实时动态研究等具有重要意义。在此我们表明,不仅腔模首先与供体共振形成级联混合光与物质态以驱动能量转移,当腔模首先与受体共振时,它同样可以增强供体与受体之间的非辐射能量转移。重要的是,尽管这两种强耦合系统都能增强能量转移,但这些过程背后的极化激元介导的能量转移机制是不同的。通过运用量子塔维斯 - 卡明斯理论,我们计算每个极化激元态平均光子数的时间演化,以分析不同强耦合状态下的能量转移效应。