A perspective on ab initio modeling of polaritonic chemistry: The role of non-equilibrium effects and quantum collectivity
Journal article, 2022

This Perspective provides a brief introduction into the theoretical complexity of polaritonic chemistry, which emerges from the hybrid nature of strongly coupled light-matter states. To tackle this complexity, the importance of ab initio methods is highlighted. Based on those, novel ideas and research avenues are developed with respect to quantum collectivity, as well as for resonance phenomena immanent in reaction rates under vibrational strong coupling. Indeed, fundamental theoretical questions arise about the mesoscopic scale of quantum-collectively coupled molecules when considering the depolarization shift in the interpretation of experimental data. Furthermore, to rationalize recent findings based on quantum electrodynamical density-functional theory (QEDFT), a simple, but computationally efficient, Langevin framework is proposed based on well-established methods from molecular dynamics. It suggests the emergence of cavity-induced non-equilibrium nuclear dynamics, where thermal (stochastic) resonance phenomena could emerge in the absence of external periodic driving. Overall, we believe that the latest ab initio results indeed suggest a paradigmatic shift for ground-state chemical reactions under vibrational strong coupling from the collective quantum interpretation toward a more local, (semi)-classically and non-equilibrium dominated perspective. Finally, various extensions toward a refined description of cavity-modified chemistry are introduced in the context of QEDFT, and future directions of the field are sketched.

Author

Dominik Sidler

Center for Free-Electron Laser Science (CFEL)

Max Planck Society

University of Hamburg

Michael Ruggenthaler

Max Planck Society

University of Hamburg

Center for Free-Electron Laser Science (CFEL)

Christian Schäfer

Chalmers, Microtechnology and Nanoscience (MC2), Applied Quantum Physics

Enrico Ronca

CNR-IPCF

Angel Rubio

Center for Free-Electron Laser Science (CFEL)

University of Hamburg

University of the Basque Country (UPV/EHU)

Max Planck Society

Flatiron Institute

Journal of Chemical Physics

0021-9606 (ISSN) 1089-7690 (eISSN)

Vol. 156 23 230901

Subject Categories

Atom and Molecular Physics and Optics

Theoretical Chemistry

DOI

10.1063/5.0094956

PubMed

35732522

More information

Latest update

7/26/2022