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叔丁基取代并四苯薄膜中的单线态激子裂变

Singlet exciton fission in thin films of tert-butyl-substituted terrylenes.

作者信息

Eaton Samuel W, Miller Stephen A, Margulies Eric A, Shoer Leah E, Schaller Richard D, Wasielewski Michael R

机构信息

§Center for Nanoscale Materials, Argonne National Laboratory, Argonne, Illinois 60439-4803, United States.

出版信息

J Phys Chem A. 2015 May 7;119(18):4151-61. doi: 10.1021/acs.jpca.5b02719. Epub 2015 Apr 22.

Abstract

Two terrylene chromophores, 2,5,10,13-tetra(tert-butyl)terrylene (1) and 2,5-di(tert-butyl)terrylene (2), were synthesized and studied to determine their singlet exciton fission (SF) efficiencies. Compound 1 crystallizes in one-dimensional stacks, whereas 2 packs in a slip-stacked, herringbone pattern of dimers motif. Strongly quenched fluorescence and rapid singlet exciton decay dynamics are observed in vapor-deposited thin films of 1 and 2. Phosphorescence measurements on thin films of 1 and 2 show that SF is only 70 meV endoergic for these chromophores. Femtosecond transient absorption experiments using low laser fluences on these films reveal rapid triplet exciton formation for both 1 (τ = 120 ± 10 ps) and 2 (τ = 320 ± 20 ps) that depends strongly on film crystallinity. The transient absorption data are consistent with formation of an excimer state prior to SF. Triplet exciton yield measurements indicate nearly quantitative SF in thin films of both chromophores in highly crystalline solvent-vapor-annealed films: 170 ± 20% for 1 and 200 ± 30% for 2. These results show that significantly different crystal morphologies of the same chromophore can both result in high-efficiency SF provided that the energetics are favorable.

摘要

合成并研究了两种苝发色团,即2,5,10,13-四(叔丁基)苝(1)和2,5-二(叔丁基)苝(2),以确定它们的单线态激子裂变(SF)效率。化合物1以一维堆积形式结晶,而化合物2则以二聚体基序的错位堆积人字形模式堆积。在1和2的气相沉积薄膜中观察到强烈猝灭的荧光和快速的单线态激子衰减动力学。对1和2的薄膜进行磷光测量表明,对于这些发色团,SF仅为70毫电子伏特吸热。在这些薄膜上使用低激光能量密度进行的飞秒瞬态吸收实验表明,1(τ = 120 ± 10皮秒)和2(τ = 320 ± 20皮秒)都能快速形成三重态激子,这强烈依赖于薄膜的结晶度。瞬态吸收数据与SF之前准分子态的形成一致。三重态激子产率测量表明,在高度结晶的溶剂蒸汽退火薄膜中,两种发色团的薄膜中SF几乎是定量的:1为170 ± 20%,2为200 ± 30%。这些结果表明,只要能量有利,同一发色团显著不同的晶体形态都能导致高效的SF。

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