A Triple‐Acceptor Motif for Chalcogen‐Bond‐Directed Circular Assemblies that Enhance Singlet Oxygen Generation
Abstract
ABSTRACT Herein, we report a triple‐acceptor donor–acceptor (D–A) molecule designed with three consecutively linked acceptors to confer substantial conformational flexibility. This conformational flexibility translates into distinct crystalline packing modes, which yield strikingly different photosensitizing efficiencies. Notably, a unique crystal structure is formed by the self‐assembly of six distinct conformers into a circular architecture via intermolecular chalcogen bonding, an arrangement unambiguously confirmed by single‐crystal X‐ray diffraction. The cyclic assembly delivers an impressive solid‐state 1 O 2 quantum yield of 80%, a value far higher than that of the solution‐dispersed monomer (62%) and a non‐cyclically packed polymorph with both chalcogen bonds and π‐interactions between A groups (43%). This enhancement stems from the unique circular packing motif that increases the energy mismatch between the singlet excited state (S 1 ) and singlet ground state (S 0 ) to facilitate intersystem crossing (ISC), while concurrently suppressing π–π stacking–induced quenching. The generality of this strategy is further demonstrated by a heavy‐atom‐containing analogue, which achieves a similarly high 1 O 2 quantum yield of 84% in its chalcogen‐bond‐directed circular assembly (comprising three conformers), markedly outperforming a counterpart polymorph (45%) with both chalcogen bonds and π‐interactions between A groups and non‐circular packing. These findings establish a versatile and robust approach for developing high‐performance crystalline photosensitizers.
Article Details
Authors (7)
Xiaozhen Che
Key Laboratory of Photochemistry CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing China
Lishan Sun
Key Laboratory of Photochemistry, CAS Research/Education Center for Excellence in Molecular Sciences
Chenglong Liao
Key Laboratory of Photochemistry CAS Research/Education Center for Excellence in Molecular Sciences Institute of Chemistry Chinese Academy of Sciences Beijing China
Hongwei Ji
Key Laboratory of Photochemistry, CAS Research/Education Center for Excellence in Molecular Sciences
Yanjun Gong
School of Chemistry and Chemical Engineering
Yanke Che
Key Laboratory of Photochemistry, CAS Research/Education Center for Excellence in Molecular Sciences
Jincai Zhao