H2020Individual fellowship2020–2022

SICMA · Simulating Intramolecular Charge Migration on Attosecond timescales

Horizon 2020 — Marie Skłodowska-Curie Actions

Duration
2020-08-01 → 2022-07-31
EU contribution
€212,934
Participants
1
Scheme
MSCA-IF

Lines connect the coordinator with its partners.

Results in brief

Simulating Intramolecular Charge Migration on Attosecond timescales

With the advent of attosecond laser pulses in the extreme-ultraviolet regime, ultrafast molecular dynamics can be probed with unprecedented time resolution. The fundamental challenge of attosecond science is to understand the creation of coherent superposition of electronic states (upon shining a laser pulse) and the manipulation of electronic coherence (by overcoming the nuclei-induced decoherence). Long-lived quantum coherence is already predicted for the efficient energy transfer in photosynthetic complexes at physiological temperatures. Quantum coherence is also indispensable in quantum technologies, such as, sensing, transduction, and computing – to outperform their classical counterparts. The overall objectives of SICMA are two-fold: (i) to ascertain the role of nuclear motion in governing the electronic motion following the creation of a non-stationary electronic state, and (ii) to investigate fundamentally new ways to “steer” the correlated electron-nuclear motion and the resulting ultrafast charge migration. The results indicate the vital role played by the nuclear degrees-of-freedom in the overall decoherence. However, by invoking a simple, and effective laser control strategy long-lived coherences can still be achieved.

Data: CORDIS, © European Union

Project objective

The ability to control the movement of charge is at the heart of chemistry. With the birth of intense, ultrashort attosecond laser pulses, electronic wave packets can be created in molecules which induce nuclear motion. As a result, the observation and control of electron motion at the atomic level is becoming feasible, leading to the field of attochemistry. In this project, we will develop and use theoretical tools to investigate the potential of these modern light sources to probe and direct this charge migration induced molecular dynamics in chemically important polyatomic molecules. These elementary aspects of laser-matter interactions are governed by quantum mechanics and therefore we will solve the time-dependent Schrödinger equation using state-of-the-art quantum dynamics simulations to address the phenomenon. This will lead to a complete understanding of the underlying mechanism behind the coupled electron-nuclear motion and through a detailed comparison with other available semi-classical studies, a clear indication of their success or failure to theoretically describe such processes will be obtained. Following this, laser control schemes will be designed to enhance desired product yields from these chemical reactions. The key issues that we will address are: (i) Laser induced ultrafast charge migration in benzene and substituents, (ii) Charge migration in the photoinduced ring opening of cyclohexadiene to hexatriene, (iii) Coherent control of coupled electron-nuclear dynamics with attosecond laser pulses. Benzene is the building block of polycyclic aromatic hydrocarbons and the cyclohexadiene to hexatriene reaction plays an important role in the biosynthesis of vitamin D3 from its provitamin dehydrocholesterol. Thereby, each of these objectives has potential societal value and will increase the understanding of the molecular basis of these chemical/biological processes.

Original text from CORDIS.

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Data: CORDIS, © European Union