Finkelstein-Shapiro Daniel, Mante Pierre-Adrien, Balci Sinan, Zigmantas Donatas, Pullerits Tõnu
Instituto de Química, Universidad Nacional Autónoma de México, CDMX, Mexico.
Division of Chemical Physics and Nanolund, Lund University, Box 124, 221 00 Lund, Sweden.
J Chem Phys. 2023 Mar 14;158(10):104104. doi: 10.1063/5.0130287.
In polaritons, the properties of matter are modified by mixing the molecular transitions with light modes inside a cavity. Resultant hybrid light-matter states exhibit energy level shifts, are delocalized over many molecular units, and have a different excited-state potential energy landscape, which leads to modified exciton dynamics. Previously, non-Hermitian Hamiltonians have been derived to describe the excited states of molecules coupled to surface plasmons (i.e., plexcitons), and these operators have been successfully used in the description of linear and third order optical response. In this article, we rigorously derive non-Hermitian Hamiltonians in the response function formalism of nonlinear spectroscopy by means of Feshbach operators and apply them to explore spectroscopic signatures of plexcitons. In particular, we analyze the optical response below and above the exceptional point that arises for matching transition energies for plasmon and molecular components and study their decomposition using double-sided Feynman diagrams. We find a clear distinction between interference and Rabi splitting in linear spectroscopy and a qualitative change in the symmetry of the line shape of the nonlinear signal when crossing the exceptional point. This change corresponds to one in the symmetry of the eigenvalues of the Hamiltonian. Our work presents an approach for simulating the optical response of sublevels within an electronic system and opens new applications of nonlinear spectroscopy to examine the different regimes of the spectrum of non-Hermitian Hamiltonians.
在极化激元中,通过将分子跃迁与腔内光模式混合来改变物质的性质。由此产生的混合光 - 物质态表现出能级移动,在许多分子单元上离域,并且具有不同的激发态势能景观,这导致了激子动力学的改变。此前,已推导出非厄米哈密顿量来描述与表面等离子体激元耦合的分子的激发态(即极化激子),并且这些算符已成功用于描述线性和三阶光学响应。在本文中,我们通过费什巴赫算符在非线性光谱的响应函数形式体系中严格推导非厄米哈密顿量,并将其应用于探索极化激子的光谱特征。特别地,我们分析了等离子体激元和分子成分的跃迁能量匹配时出现的例外点上下的光学响应,并使用双面费曼图研究它们的分解。我们发现在线性光谱中干涉和拉比分裂之间有明显区别,并且在穿过例外点时非线性信号线形的对称性有定性变化。这种变化对应于哈密顿量本征值对称性的变化。我们的工作提出了一种模拟电子系统内子能级光学响应的方法,并开启了非线性光谱在研究非厄米哈密顿量光谱不同区域方面的新应用。