Imaging the Photochemistry of the Hydrogen-Bonded Heptazine-Water Complex with Femtosecond Time-Resolved Spectroscopy: A Computational Study
Sebastian V. Pios, Maxim F. Gelin, Wolfgang Domcke, Lipeng Chen

TL;DR
This computational study investigates the ultrafast photochemistry of a hydrogen-bonded heptazine-water complex using femtosecond spectroscopy simulations, revealing detailed electron and proton transfer mechanisms relevant for photocatalysis.
Contribution
It provides a detailed computational analysis of photoinduced electron and proton transfer in a heptazine-water complex, linking spectroscopic signals to ultrafast dynamics.
Findings
Proton transfer occurs via a charge-transfer state after excitation.
Hydrogen bonding influences internal conversion dynamics.
Spectroscopic signals can reveal mechanistic insights into photocatalytic processes.
Abstract
Graphitic carbon nitride (-CN) has attracted vast interest as a promising inexpensive metal-free photocatalyst for water splitting with solar photons. The heptazine (Hz) molecule is the building block of graphitic carbon nitride. The photochemistry of the Hz molecule and derivatives thereof in protic environments has been the subject of several recent experimental and computational studies. In the present work, the hydrogen-bonded HzHO complex was adopted as a model system for the exploration of photoinduced electron and proton transfer processes in this complex with quasi-classical nonadiabatic trajectory simulations, using the ADC(2) electronic-structure method and a computationally efficient surface-hopping algorithm. The population of the optically excited bright state of the Hz chromophore relaxes through three states and a…
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Taxonomy
TopicsPhotochemistry and Electron Transfer Studies · bioluminescence and chemiluminescence research · Photoreceptor and optogenetics research
