NOTsoQUANTUM | NOTsoQUANTUM: Realistic simulations of polaritonic chemistry

Summary
Polaritonic chemistry is an emerging field aiming to manipulate chemical dynamics and reactivity as well as material properties through the formation of polaritons. These are hybrid light-matter states emerging from the interaction between molecular transitions and confined light modes, leading to unique properties in the so-called strong coupling (SC) regime. Recent investigations have demonstrated several examples where polaritonic states prove beneficial to a variety of distinct processes, including the modification of nonadiabatic dynamics and molecular photophysical processes. Despite all the efforts placed into understanding how polaritons affect these processes, many unanswered questions still remain in the field. At the present time, the only way to achieve a deeper understanding on how to control the effect of polaritons in chemistry and predict new phenomena is to have a physically sound, accurate and low-cost methodology capable of including all key ingredients responsible for the formation of polaritons, while describing the dynamics of the light and matter entities on an equal footing. Such a framework remains to be explored, and this proposal precisely aims at developing the necessary methodology and simulate a realistic setup of molecular polaritons. The outcomes of this proposal will provide insight on the manipulation of chemical dynamics in polaritonic chemistry and additionally predict plausible modifications of photophysical processes. This will be possible by extending the Ehrenfest+R approach, a promising method for the simulation of coupled photon-molecular dynamics, to SC situations. Taking advantage of its ability to recover quantum effects of light-matter interactions with semiclassical dynamics, we will follow a “NOTsoQUANTUM” approach that will allow for feasible simulations which would otherwise be prohibitive with a full quantum description of both light and matter.
Unfold all
/
Fold all
More information & hyperlinks
Web resources: https://cordis.europa.eu/project/id/101029374
Start date: 01-09-2022
End date: 31-08-2025
Total budget - Public funding: 245 732,16 Euro - 245 732,00 Euro
Cordis data

Original description

Polaritonic chemistry is an emerging field aiming to manipulate chemical dynamics and reactivity as well as material properties through the formation of polaritons. These are hybrid light-matter states emerging from the interaction between molecular transitions and confined light modes, leading to unique properties in the so-called strong coupling (SC) regime. Recent investigations have demonstrated several examples where polaritonic states prove beneficial to a variety of distinct processes, including the modification of nonadiabatic dynamics and molecular photophysical processes. Despite all the efforts placed into understanding how polaritons affect these processes, many unanswered questions still remain in the field. At the present time, the only way to achieve a deeper understanding on how to control the effect of polaritons in chemistry and predict new phenomena is to have a physically sound, accurate and low-cost methodology capable of including all key ingredients responsible for the formation of polaritons, while describing the dynamics of the light and matter entities on an equal footing. Such a framework remains to be explored, and this proposal precisely aims at developing the necessary methodology and simulate a realistic setup of molecular polaritons. The outcomes of this proposal will provide insight on the manipulation of chemical dynamics in polaritonic chemistry and additionally predict plausible modifications of photophysical processes. This will be possible by extending the Ehrenfest+R approach, a promising method for the simulation of coupled photon-molecular dynamics, to SC situations. Taking advantage of its ability to recover quantum effects of light-matter interactions with semiclassical dynamics, we will follow a “NOTsoQUANTUM” approach that will allow for feasible simulations which would otherwise be prohibitive with a full quantum description of both light and matter.

Status

SIGNED

Call topic

MSCA-IF-2020

Update Date

28-04-2024
Images
No images available.
Geographical location(s)
Structured mapping
Unfold all
/
Fold all
Horizon 2020
H2020-EU.1. EXCELLENT SCIENCE
H2020-EU.1.3. EXCELLENT SCIENCE - Marie Skłodowska-Curie Actions (MSCA)
H2020-EU.1.3.2. Nurturing excellence by means of cross-border and cross-sector mobility
H2020-MSCA-IF-2020
MSCA-IF-2020 Individual Fellowships