Ribson Ryan D, Choi Gyeongshin, Hadt Ryan G, Agapie Theodor
Division of Chemistry and Chemical Engineering, Arthur Amos Noyes Laboratory of Chemical Physics, California Institute of Technology, Pasadena, California 91125, United States.
ACS Cent Sci. 2020 Nov 25;6(11):2088-2096. doi: 10.1021/acscentsci.0c01044. Epub 2020 Nov 10.
Singlet fission has the potential to surpass current efficiency limits in next-generation photovoltaics and to find use in quantum information science. Despite the demonstration of singlet fission in various materials, there is still a great need for fundamental design principles that allow for tuning of photophysical parameters, including the rate of fission and triplet lifetimes. Here, we describe the synthesis and photophysical characterization of a novel bipentacene dipyridyl pyrrole (HDPP-Pent) and its Li- and K-coordinated derivatives. HDPP-Pent undergoes singlet fission at roughly 50% efficiency (τ = 730 ps), whereas coordination in the Li complex induces significant structural changes to generate a dimer, resulting in a 7-fold rate increase (τ = 100 ps) and more efficient singlet fission with virtually no sacrifice in triplet lifetime. We thus illustrate novel design principles to produce favorable singlet fission properties, wherein through-space control can be achieved via coordination chemistry-induced multipentacene assembly.
单线态裂变有潜力突破下一代光伏技术目前的效率限制,并在量子信息科学中得到应用。尽管已在多种材料中证明了单线态裂变,但仍迫切需要能够调节光物理参数(包括裂变速率和三重态寿命)的基本设计原则。在此,我们描述了一种新型联并五苯二吡啶基吡咯(HDPP-Pent)及其锂和钾配位衍生物的合成与光物理表征。HDPP-Pent以约50%的效率发生单线态裂变(τ = 730皮秒),而锂配合物中的配位作用会引发显著的结构变化以生成二聚体,导致裂变速率提高7倍(τ = 100皮秒),并且单线态裂变更高效,而三重态寿命几乎没有牺牲。因此,我们阐述了产生有利单线态裂变特性的新型设计原则,其中可通过配位化学诱导的多并五苯组装实现空间控制。