期刊
SCIENCE CHINA-CHEMISTRY
卷 65, 期 4, 页码 740-745出版社
SCIENCE PRESS
DOI: 10.1007/s11426-021-1214-8
关键词
noncovalent interaction; multiscale self-assembly; core; shell; solid solution; white-light emission
资金
- National Natural Science Foundation of China [21971185, 51821002]
- Collaborative Innovation Center of Suzhou Nano Science and Technology (CIC-Nano)
- 111 Project of the State Administration of Foreign Experts Affairs of China
Organic luminescent materials are crucial in optoelectronic applications, but combining multiple materials efficiently is difficult. In this study, we demonstrate the multiscale construction of organic luminescent microwires through different levels of assembly. We successfully form cocrystals, solid solutions, and core-shell microstructures, providing a feasible approach for the synthesis of novel luminescent organic semiconductor materials.
Organic luminescent materials play an integral role in the optoelectronic applications of displays and solid-state lighting. Nevertheless, high-performance organic luminescent materials require the efficient combination of two or more kinds of materials, which is extremely difficult owing to the completely different self-assembly behaviors of multicomponent molecules. Herein, based on a broad scale from the molecular, micro-/nano-scale, and macroscopic levels, we successfully demonstrate the multiscale construction of organic luminescent microwires of cocrystals, solid solutions, and core-shell microstructures. Through the wide selection of electron donor/acceptor pairs, a series of color-tunable charge-transfer (CT) cocrystals are formed via the intermolecular cooperative self-assembly process. On this basis, the high structural compatibility and perfect lattice mismatching (similar to 1.1%) of cocrystals are critical factors that facilitate the combination of dissimilar materials to form solid solutions and core/shell microwires. Significantly, because of the full-spectrum light transport from 400 to 800 nm, the nano-micro-scaled solid solution microwires act as microscale white-light sources [CIE (0.32, 0.36)]. Meanwhile, the macroscopic-scale core/shell organic-microwires demonstrate tunable white-light emission with a high color-rendering index (CRI) of 83, whose CIE coordinates span from (0.37,0.39) to (0.40,0.31). Therefore, our work provides a feasible approach to the multiscale synthesis of novel luminescent organic semiconductor materials, which could lay a solid foundation for organic optoelectronics.
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