Farag Marwa H, Mandal Arkajit, Huo Pengfei
Department of Chemistry, University of Rochester, 120 Trustee Road, Rochester, New York 14627, USA.
Phys Chem Chem Phys. 2021 Aug 12;23(31):16868-16879. doi: 10.1039/d1cp00943e.
We investigate the Polariton induced conical intersection (PICI) created from coupling a diatomic molecule with the quantized photon mode inside an optical cavity, and the corresponding Berry Phase effects. We use the rigorous Pauli-Fierz Hamiltonian to describe the quantum light-matter interactions between a LiF molecule and the cavity, and use the exact quantum propagation to investigate the polariton quantum dynamics. The molecular rotations relative to the cavity polarization direction play a role as the tuning mode of the PICI, resulting in an effective CI even within a diatomic molecule. To clearly demonstrate the dynamical effects of the Berry phase, we construct two additional models that have the same Born-Oppenheimer surface, but the effects of the geometric phase are removed. We find that when the initial wavefunction is placed in the lower polaritonic surface, the Berry phase causes a π phase-shift in the wavefunction after the encirclement around the CI, indicated from the nuclear probability distribution. On the other hand, when the initial wavefunction is placed in the upper polaritonic surface, the geometric phase significantly influences the couplings between polaritonic states and therefore, the population dynamics between them. These BP effects are further demonstrated through the photo-fragment angular distribution. PICI created from the quantized radiation field has the promise to open up new possibilities to modulate photochemical reactivities.
我们研究了通过将双原子分子与光学腔内的量子化光子模式耦合而产生的极化激元诱导锥形交叉(PICI)以及相应的贝里相位效应。我们使用严格的泡利 - 菲尔斯哈密顿量来描述LiF分子与腔之间的量子光 - 物质相互作用,并使用精确的量子传播来研究极化激元量子动力学。分子相对于腔极化方向的旋转充当PICI的调谐模式,即使在双原子分子内也会产生有效的锥形交叉。为了清楚地展示贝里相位的动力学效应,我们构建了另外两个具有相同玻恩 - 奥本海默表面但消除了几何相位效应的模型。我们发现,当初始波函数置于较低极化激元表面时,在围绕锥形交叉点环绕一周后,贝里相位会导致波函数产生π相移,这从核概率分布中可以看出。另一方面,当初始波函数置于较高极化激元表面时,几何相位会显著影响极化激元态之间的耦合,进而影响它们之间的布居动力学。这些贝里相位效应通过光碎片角分布得到了进一步证明。由量子化辐射场产生的PICI有望为调节光化学反应性开辟新的可能性。