Laser-Induced Electronic and Vibronic Dynamics in the Pyrene Molecule and its Cation
arXiv:2109.14397 · doi:10.1021/acs.jpca.1c06538
Abstract
Among polycyclic aromatic hydrocarbons, pyrene is widely used as an optical probe thanks to peculiar ultraviolet absorption and infrared emission features. Interestingly, this molecule is also an abundant component of the interstellar medium, where it is detected via its unique spectral fingerprints. In this work, we present a comprehensive first-principles study on the electronic and vibrational response of pyrene and its cation to ultrafast, coherent pulses in resonance with their optically active excitations in the ultraviolet region. The analysis of molecular symmetries, electronic structure, and linear optical spectra is used to interpret transient absorption spectra and kinetic energy spectral densities computed for the systems excited by ultrashort laser fields. By disentangling the effects of the electronic and vibrational dynamics via \textit{ad hoc} simulations with stationary and moving ions, and, in specific cases, with the aid of auxiliary model systems, we rationalize that the nuclear motion is mainly harmonic in the neutral species, while strong anharmonic oscillations emerge in the cation, driven by electronic coherence. Our results provide additional insight into the ultrafast vibronic dynamics of pyrene and related compounds and set the stage for future investigations on more complex carbon-conjugated molecules.
References in corpus (9)
- Watching the coherent birth of polaron pairs in conjugated polymers
- Simulating pump-probe photo-electron and absorption spectroscopy on the attosecond time-scale with time-dependent density-functional theory
- Time-resolved spectroscopy in time dependent density functional theory: An exact condition
- Dielectric response of laser-excited silicon at finite electron temperature
- Optical properties and charge-transfer excitations in edge-functionalized all-graphene nanojunctions
- On the viability of the PAH model as an explanation of the unidentified infrared emission features
- Ab initio Simulation of Optical Limiting: The Case of Metal-Free Phthalocyanine
- Ultrafast dynamics of photoinduced charge separation
- Anisotropy and Size Effects on the Optical Spectra of Polycyclic Aromatic Hydrocarbons