Thermodynamic equilibrium between locally excited and charge-transfer states through thermally activated charge transfer in 1-(pyren-2′-yl)--carborane

Reversible conversion between excited-states plays an important role in many photophysical phenomena. Using 1-(pyren-2′-yl)- o -carborane as a model, we studied the photoinduced reversible charge-transfer (CT) process and the thermodynamic equilibrium between the locally-excited (LE) state and CT st...

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Veröffentlicht in:Chemical science (Cambridge) 2022-05, Vol.13 (18), p.525-5219
Hauptverfasser: Ji, Lei, Riese, Stefan, Schmiedel, Alexander, Holzapfel, Marco, Fest, Maximillian, Nitsch, Jörn, Curchod, Basile F. E, Friedrich, Alexandra, Wu, Lin, Al Mamari, Hamad H, Hammer, Sebastian, Pflaum, Jens, Fox, Mark A, Tozer, David J, Finze, Maik, Lambert, Christoph, Marder, Todd B
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Zusammenfassung:Reversible conversion between excited-states plays an important role in many photophysical phenomena. Using 1-(pyren-2′-yl)- o -carborane as a model, we studied the photoinduced reversible charge-transfer (CT) process and the thermodynamic equilibrium between the locally-excited (LE) state and CT state, by combining steady state, time-resolved, and temperature-dependent fluorescence spectroscopy, fs- and ns-transient absorption, and DFT and LR-TDDFT calculations. Our results show that the energy gaps and energy barriers between the LE, CT, and a non-emissive 'mixed' state of 1-(pyren-2′-yl)- o -carborane are very small, and all three excited states are accessible at room temperature. The internal-conversion and reverse internal-conversion between LE and CT states are significantly faster than the radiative decay, and the two states have the same lifetimes and are in thermodynamic equilibrium. Reversible conversion between excited-states is key to many photophysical phenomena. We studied the equilibrium between LE and CT states by time-resolved and temperature-dependent fluorescence, fs- and ns-transient absorption, and LR-TDDFT calculations.
ISSN:2041-6520
2041-6539
DOI:10.1039/d1sc06867a