论文标题

探测溶液中噻吩 - 二吡喃吡咯烷酮衍生物的电子结构和光物理学

Probing the electronic structure and photophysics of thiophene-diketopyrrolopyrrole derivatives in solution

论文作者

Polak, Daniel W, Casal, Mariana T do, Toldo, Josene M, Hu, Xiantao, Amoruso, Giordano, Pomeranc, Olivia, Heeney, Martin, Barbatti, Mario, Ashfold, Michael N R, Oliver, Thomas A A

论文摘要

二吡咯基吡咯是光电材料中流行的电子吸引人单元。当与捐赠侧链官能团(例如硫代)的电子捐赠时,它们会形成一类非常广泛的供体 - 受体分子:噻吩 - 二吡咯并吡中治(TDPPS)。尽管在生物传感器和光伏材料中使用了广泛的使用,但研究尚未建立特定TDPP的电子结构与关键光学特性之间的重要联系。为了弥合这一间隙,已使用22 FS时间分辨率的超快瞬态吸收来探索三种典型TDPP分子的辐射物质:溶液中的单体,二聚体和聚合物。这些研究表明,这些分子原型在可见光激发下的光体物理学仅由两个激发的电子状态确定,具有截然不同的电子特征(一个是光学的,另一个是明亮的,另一个是黑暗的),它们的相对能量排序,并且是从一个到另一个和/或地面状态的内部转换的时间表。电子结构的潜在差异改变了这些激发态与其相关动力学之间的分支。反过来,这些因素决定了荧光量子产率,在此处研究的TDPP原型中显示出约1-2个数量级。分子从明亮到黑暗状态的快速非辐射转移是由圆锥形交集介导的。值得注意的是,测得的瞬态吸收数据中的波袋信号带有核运动的签名,这些核运动可以使电子核波函数混合并促进明亮和黑暗状态之间的非绝热耦合。

Diketopyrrolopyrroles are a popular class of electron-withdrawing unit in optoelectronic materials. When combined with electron donating side-chain functional groups such as thiophenes, they form a very broad class of donor-acceptor molecules: thiophene-diketopyrrolopyrroles (TDPPs). Despite their widescale use in biosensors and photovoltaic materials, studies have yet to establish the important link between the electronic structure of the specific TDPP and the critical optical properties. To bridge this gap, ultrafast transient absorption with 22 fs time resolution has been used to explore the photophysics of three prototypical TDPP molecules: a monomer, dimer and polymer in solution. These studies show that the photophysics of these molecular prototypes under visible photoexcitation are determined by just two excited electronic states, having very different electronic characters (one is optically bright, the other dark), their relative energetic ordering and the timescales for internal conversion from one to the other and/or to the ground state. The underlying difference in electronic structure alters the branching between these excited states and their associated dynamics. In turn, these factors dictate the fluorescence quantum yields, which are shown to vary by ~1-2 orders of magnitude across the TDPP prototypes investigated here. The fast non-radiative transfer of molecules from the bright to dark states is mediated by conical intersections. Remarkably, wavepacket signals in the measured transient absorption data carry signatures of the nuclear motions that enable mixing of the electronic-nuclear wavefunction and facilitate non-adiabatic coupling between the bright and dark states.

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