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Published July 10, 2018 | Published + Supplemental Material
Journal Article Open

Vibrational coherence transfer in the ultrafast intersystem crossing of a diplatinum complex in solution

Abstract

We investigate the ultrafast transient absorption response of tetrakis(μ-pyrophosphito)diplatinate(II), [Pt₂(μ-P₂O₅H₂)₄]⁴⁻ [hereafter abbreviated Pt(pop)], in acetonitrile upon excitation of its lowest singlet ¹A_(2u) state. Compared with previously reported solvents [van der Veen RM, Cannizzo A, van Mourik F, Vlček A, Jr, Chergui M (2011) J Am Chem Soc 133:305–315], a significant shortening of the intersystem crossing (ISC) time (<1 ps) from the lowest singlet to the lowest triplet state is found, allowing for a transfer of vibrational coherence, observed in the course of an ISC in a polyatomic molecule in solution. Density functional theory (DFT) quantum mechanical/molecular mechanical (QM/MM) simulations of Pt(pop) in acetonitrile and ethanol show that high-lying, mostly triplet, states are strongly mixed and shifted to lower energies due to interactions with the solvent, providing an intermediate state (or manifold of states) for the ISC. This suggests that the larger the solvation energies of the intermediate state(s), the shorter the ISC time. Because the latter is smaller than the pure dephasing time of the vibrational wave packet, coherence is conserved during the spin transition. These results underscore the crucial role of the solvent in directing pathways of intramolecular energy flow.

Additional Information

© 2018 National Academy of Sciences. Published under the PNAS license. Edited by Martin Gruebele, University of Illinois at Urbana–Champaign, Urbana, IL, and approved June 1, 2018 (received for review November 23, 2017). Published ahead of print June 25, 2018. This work was supported by the Swiss National Science Foundation (NSF) via the National Center of Competence in Research/Molecular Ultrafast Science and Technology and Contract 200021_137717. We also thank the European collaboration program Cooperation in Science and Technology (Actions CM1202 and CM1405), the Czech Science Foundation (Grant 17-011375), and the NSF Center for Chemical Innovation in Solar Fuels Program (CHE-1305124) for support. Author contributions: M.C. designed research; R.M., G.C., G.A., and I.T. performed research; G.C., H.B.G., and I.T. contributed new reagents/analytic tools; R.M., G.C., G.A., A.V., I.T., and M.C. analyzed data; and M.C. wrote the paper. The authors declare no conflict of interest. This article is a PNAS Direct Submission. This article contains supporting information online at www.pnas.org/lookup/suppl/doi:10.1073/pnas.1719899115/-/DCSupplemental.

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August 21, 2023
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