Supramolecular Porous Organic Nanocomposites for Heterogeneous Photocatalysis of a Sulfur Mustard Simulant.
basic_science · Level V
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- Record sourced from PubMed, PMID 32602131.
- Also identified by DOI 10.1002/adma.202001592.
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Abstract
Efficient heterogeneous photosensitizing materials require both large accessible surface areas and excitons of suitable energies and with well-defined spin structures. Confinement of the tetracationic cyclophane (ExBox<sup>4+</sup> ) within a nonporous anionic polystyrene sulfonate (PSS) matrix leads to a surface area increase of up to 225 m<sup>2</sup> g<sup>-1</sup> in ExBox•PSS. Efficient intersystem crossing is achieved by combining the spin-orbit coupling associated to Br heavy atoms in 1,3,5,8-tetrabromopyrene (TBP), and the photoinduced electron transfer in a TBP⊂ExBox<sup>4+</sup> supramolecular dyad. The TBP⊂ExBox<sup>4+</sup> complex displays a charge transfer band at 450 nm and an exciplex emission at 520 nm, indicating the formation of new mixed-electronic states. The lowest triplet state (T<sub>1</sub> , 1.89 eV) is localized on the TBP and is close in energy with the charge separated state (CT, 2.14 eV). The homogeneous and heterogeneous photocatalytic activities of the TBP⊂ExBox<sup>4+</sup> , for the elimination of a sulfur mustard simulant, has proved to be significantly more efficient than TBP and ExBox<sup>+4</sup> , confirming the importance of the newly formed excited-state manifold in TBP⊂ExBox<sup>4+</sup> for the population of the low-lying T<sub>1</sub> state. The high stability, facile preparation, and high performance of the TBP⊂ExBox•PSS nanocomposites augur well for the future development of new supramolecular heterogeneous photosensitizers using host-guest chemistry.