Abstract
AbstractDiamondoids, of which adamantane (C$$_{10}$$
10
H$$_{16}$$
16
) is the simplest representative, constitute an intriguing class of carbon based nanomaterials with interesting chemical, mechanical and opto-electronic properties. While neutral diamondoids have been extensively studied for decades, their cationic counterparts were a subject of recent experimental investigations motivated by their potential role in astrochemistry. Here, we perform a computational study of the adamantane cation (C$$_{10}$$
10
H$$_{16}^+$$
16
+
) complementing the recent experimental findings. Specifically, we extend earlier theoretical work on vibrationally resolved electronic spectroscopy by accounting for the higher lying electronically excited states of the cation in the absorption and photoelectron spectra. We also perform adiabatic and nonadiabatic (surface hopping) molecular dynamics simulations to study (fast) fragmentation processes and electronic relaxation of C$$_{10}$$
10
H$$_{16}^+$$
16
+
. Our simulations reveal that after excitation with near-infrared–ultraviolet photons, the adamantane cation undergoes an ultrafast internal conversion to the ground (doublet) state (on a time scale of 10–100 fs depending on initial excitation energy) which can be followed by a fast fragmentation, predominantly H loss. The yield of the ultrafast hydrogen dissociation as a function of excitation energy is reported.
Funder
Deutsche Forschungsgemeinschaft
Universität Potsdam
Publisher
Springer Science and Business Media LLC
Subject
Physical and Theoretical Chemistry
Cited by
1 articles.
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