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Optimal arrangements of 1,3-diphenylisobenzofuran molecule pairs for fast singlet fission
Author(s) -
Eric A. Buchanan,
Josef Michl
Publication year - 2019
Publication title -
photochemical and photobiological sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.699
H-Index - 101
eISSN - 1474-9092
pISSN - 1474-905X
DOI - 10.1039/c9pp00283a
Subject(s) - singlet fission , singlet state , conformational isomerism , molecule , electron pair , chemistry , symmetry (geometry) , crystallography , molecular orbital , physics , molecular physics , atomic physics , geometry , quantum mechanics , electron , mathematics , excited state
A simplified version of the frontier orbital model has been applied to pairs of C 2 , C 2v , C s , and C 1 symmetry 1,3-diphenylisobenzofuran rotamers to determine their best packing for fast singlet fission (SF). For each rotamer the square of the electronic matrix element for SF was calculated at 2.2 × 10 9 pair geometries and a few thousand most significant physically accessible local maxima were identified in the six-dimensional space of mutual arrangements. At these pair geometries, SF energy balance was evaluated, relative SF rate constants were approximated using Marcus theory, and the SF rate constant k SF was maximized by further optimization of the geometry of the molecular pair. The process resulted in 142, 67, 214, and 291 unique geometries for the C 2 , C 2v , C s , and C 1 symmetry molecular pairs, respectively, predicted to be superior to the C 2 symmetrized known crystal pair structure. These optimized pair geometries and their triplet biexciton binding energies are reported as targets for crystal engineering and/or covalent dimer synthesis, and as possible starting points for high-level pair geometry optimizations.

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