Shanghai Key Laboratory of Electrical Insulation and Thermal Aging, School of Chemistry and Chemical Engineering, Shanghai Jiaotong University , Shanghai 200240, China.
State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University , Shanghai 200433, China.
J Am Chem Soc. 2017 Jan 18;139(2):785-791. doi: 10.1021/jacs.6b10550. Epub 2017 Jan 10.
In nanoscience, chirality has shown a significant ability to tune materials' electronic properties, whereas imposing macrochirality into the regulation of singlet-triplet features of organic optoelectronics remains a challenging research topic. Since the tuning for singlet and triplet excited-state properties in a single π-functional molecule connects to its multicolor luminescent application and potential improvement of internal quantum efficiency, we here report that supramolecular chirality can be employed to toggle the singlet and triplet emissions in a well-designed asterisk-shaped molecule. Employing a hexathiobenzene-based single luminophore as a prototype and functionalizing it with chiral α-lipoiate side groups, we find that helical nanoarchitectures can accordingly form in mixed DMF/HO solution. On this basis, switching between fluorescence and phosphorescence of the material can be realized upon helical self-assembly and dissociation. Such a behavior can be attributed to a helical-conformation-dependent manipulation of the intersystem crossing. Furthermore, reversible mechanoluminescence of the corresponding solid sample was also observed to rely on an analogous molecular self-assembly alternation. These results can probably provide new visions for the development of next-generation supramolecular chiral functional materials.
在纳米科学中,手性已显示出显著调节材料电子性质的能力,而将宏观手性引入有机光电材料的单重态-三重态性质的调控仍是一个具有挑战性的研究课题。由于在单个π-功能分子中对单重态和三重态激发态性质的调谐与其多色发光应用及其内部量子效率的潜在提高有关,因此我们在这里报告说,超分子手性可用于切换在精心设计的星形分子中的单重态和三重态发射。我们以基于六噻苯的单发光体作为原型,并对其进行手性α- lipoiate 侧基官能化,发现它可以在 DMF/HO 的混合溶液中相应地形成螺旋纳米结构。在此基础上,通过螺旋自组装和解离可以实现材料荧光和磷光之间的切换。这种行为可以归因于对系间窜越的螺旋构象依赖性操纵。此外,还观察到相应的固体样品的可逆机械发光也依赖于类似的分子自组装交替。这些结果可能为下一代超分子手性功能材料的发展提供新的思路。