4.7 Article

Effect of the Molecular Conformation on Excitation Energy Transfer in Conformationally Constrained Boryl-BODIPY Dyads

Journal

INORGANIC CHEMISTRY
Volume 60, Issue 8, Pages 5452-5462

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.inorgchem.0c02739

Keywords

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Funding

  1. SERB, New Delhi, India [EMR/2015/000572, 21.3.16]

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The study focused on the dual emission characteristics of boryl-BODIPYs, where the ratio between two emission bands varied significantly depending on molecular conformations. The frustrated excited-state energy transfer from borane to BODIPY was identified as the cause of the dual emission features, which can be elegantly tuned by modulating the dihedral angle between these two moieties.
We studied the dual emission characteristics of a series of boryl-BODIPYs (1-6) comprised of triarylborane (TAB) as an energy donor and BODIPY as an energy acceptor. The molecular conformations of dyads 1-6 were systematically tuned by judiciously changing the spacer that bridged the boryl and BODIPY moieties. Frontier molecular orbitals (FMOs) are localized in 3, 4, and 6 with a twisted molecular conformation. In contrast, FMOs are significantly delocalized in 1, 2, and 5 with the least-twisted molecular conformation. Dyads 1-6 showed dual emission features when they were excited at the TAB-dominated absorption band. However, the ratio between the two emission bands in 1-6 significantly varied depending on the molecular conformations. Systematic photoluminescence (PL) studies (both steady-state and time-resolved PL) together with computational, crystal structure, and anion binding studies established that the frustrated excited-state energy transfer from borane to BODIPY is the cause of the dual emission features in these molecular dyads. These studies also revealed that the energy transfer from borane to BODIPY can be elegantly tuned by modulating the dihedral angle between these two moieties.

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