Department of Chemistry and Biochemistry, University of South Carolina, 631 Sumter Street, Columbia, SC, 29208, USA.
College of Engineering and Computing, Swearingen Engineering Center, Columbia, SC, 29208, USA.
Angew Chem Int Ed Engl. 2017 Apr 10;56(16):4525-4529. doi: 10.1002/anie.201612199. Epub 2017 Mar 23.
We report the first example of a donor-acceptor corannulene-containing hybrid material with rapid ligand-to-ligand energy transfer (ET). Additionally, we provide the first time-resolved photoluminescence (PL) data for any corannulene-based compounds in the solid state. Comprehensive analysis of PL data in combination with theoretical calculations of donor-acceptor exciton coupling was employed to estimate ET rate and efficiency in the prepared material. The ligand-to-ligand ET rate calculated using two models is comparable with that observed in fullerene-containing materials, which are generally considered for molecular electronics development. Thus, the presented studies not only demonstrate the possibility of merging the intrinsic properties of π-bowls, specifically corannulene derivatives, with the versatility of crystalline hybrid scaffolds, but could also foreshadow the engineering of a novel class of hierarchical corannulene-based hybrid materials for optoelectronic devices.
我们报告了首例具有快速配体间能量转移(ET)的给体-受体冠状烯混合材料。此外,我们还提供了首例在固态下基于冠状烯的化合物的时间分辨光致发光(PL)数据。综合分析 PL 数据并结合对给体-受体激子耦合的理论计算,用于估算所制备材料中的 ET 速率和效率。使用两种模型计算的配体间 ET 速率与富勒烯类材料中的观察值相当,后者通常被认为可用于分子电子学的发展。因此,所进行的研究不仅证明了将π-碗,特别是冠状烯衍生物的固有性质与晶体混合支架的多功能性相结合的可能性,而且还可能预示着用于光电设备的新型分级冠状烯基混合材料的工程设计。