Heterocluster-Assembled Crystalline Hydrophobic Complexes with Delayed Fluorescence.
basic_science · Level V
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- Record sourced from PubMed, PMID 40465358.
- Also identified by DOI 10.1002/adma.202505734.
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Abstract
Metal-organic frameworks (MOFs) with metal─sulfur bonds exhibit unique electrical, redox, and optical properties. However, their development has been hindered by rapid nucleation during crystallization. To address this challenge, amine-based modulators to retard nucleation through competitive coordination with ligands, enabling the synthesis of a series of Cu-S cluster-based MOFs with diverse network topologies: Cu-BDT-hcb (1), Cu-TBT-acs (2), Cu-TBT-pcu (3), Cu-TBT-sql (4), Cu-TBT-dia (5), and Cu-TBT-hcb (6), are utilized. Using donor-acceptor (D-A) ligands (o/p-mercaptobenzoic acid-<sup>o/p</sup>MBA), [Sn<sub>4</sub>]-based MOFs: Sn-<sup>o</sup>DTBA-cds (7) and Sn-<sup>p</sup>DTBA-pcu (8), are fabricated. During synthesis, sulfhydryl groups underwent reductive coupling to generate novel dicarboxylate ligands with disulfide (S-S) linkages. Notably, the first bimetallic heterocluster MOF, SnCu-<sup>m</sup>MBA-dia (9), incorporating both a metal-oxygen cluster [Sn<sub>4</sub>O<sub>2</sub>(carboxylate)<sub>4</sub>] and a metal-sulfur cluster [Cu<sub>8</sub>(thiolate)<sub>8</sub>] is developed. This framework, constructed using m-mercaptobenzoic acid (<sup>m</sup>MBA) as a D-A bifunctional ligand, exhibits spatially separated HOMO and LUMO, minimizing the singlet-triplet energy gap to promote thermally activated delayed fluorescence (TADF). Compound 9 also demonstrates exceptional hydrolytic stability due to steric shielding by hydrophobic organotin moieties. This work pioneers a modulator-assisted strategy for heterocluster MOF construction, offering a paradigm for designing stable luminescent materials with tailored optoelectronic functionalities.