Kefer Oskar, Ahrens Lukas, Han Jie, Wollscheid Nikolaus, Misselwitz Erik, Rominger Frank, Freudenberg Jan, Dreuw Andreas, Bunz Uwe H F, Buckup Tiago
Physikalisch-Chemisches Institut, Ruprecht-Karls-Universität Heidelberg, D-69120 Heidelberg, Germany.
Centre for Advanced Materials, Ruprecht-Karls-Universität Heidelberg, D-69120 Heidelberg, Germany.
J Am Chem Soc. 2023 Aug 16;145(32):17965-17974. doi: 10.1021/jacs.3c05518. Epub 2023 Aug 3.
We investigate intramolecular singlet fission (iSF) of spiro-linked azaacene heterodimers by time-resolved spectroscopy and quantum chemical calculations. Combining two different azaacenes through a nonconjugated linker using condensation chemistry furnishes azaacene heterodimers. Compared to their homodimers, iSF quantum yields are improved at an extended absorption range. The driving force of iSF, the energy difference Δ between the state and the correlated triplet pair (TT), is tuned by the nature of the heterodimers. iSF is exothermic in all of the herein studied molecules. The overall quantum yield for triplet exciton formation reaches approximately 174%. This novel concept exploits large energy differences between singlet electronic states in combination with spatially fixed chromophores, which achieves efficient heterogeneous iSF, if the through-space interaction between the chromophores is minimal.
我们通过时间分辨光谱和量子化学计算研究了螺环连接的氮杂并苯异二聚体的分子内单线态裂变(iSF)。利用缩合化学通过非共轭连接基将两种不同的氮杂并苯结合在一起,得到氮杂并苯异二聚体。与它们的同二聚体相比,iSF量子产率在扩展的吸收范围内有所提高。iSF的驱动力,即单线态与相关三线态对(TT)之间的能量差Δ,可通过异二聚体的性质进行调节。在所研究的所有分子中,iSF都是放热的。三线态激子形成的总量子产率达到约174%。这一新颖概念利用了单线态电子态之间的大能量差,并结合空间固定的发色团,如果发色团之间的空间相互作用最小,则可实现高效的异质iSF。