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π共轭连接体对二酮吡咯并吡咯-二噻吩并吡咯共聚物有效激子结合能的影响

Impact of π-Conjugated Linkers on the Effective Exciton Binding Energy of Diketopyrrolopyrrole-Dithienopyrrole Copolymers.

作者信息

Leenaers Pieter J, Maufort Arthur J L A, Wienk Martijn M, Janssen René A J

机构信息

Molecular Materials and Nanosystems & Institute for Complex Molecular Systems, Eindhoven University of Technology, 5600 MB Eindhoven, Netherlands.

Dutch Institute for Fundamental Energy Research, 5612 AJ Eindhoven, The Netherlands.

出版信息

J Phys Chem C Nanomater Interfaces. 2020 Dec 17;124(50):27403-27412. doi: 10.1021/acs.jpcc.0c08768. Epub 2020 Dec 2.

Abstract

The effect of the nature of the π-conjugated linker that is positioned between electron-deficient 2,5-dihydropyrrolo[3,4-]pyrrole-1,4-dione (DPP) and electron-rich dithieno[3,2-:2',3'-]pyrrole (DTP) units in alternating DPP-DTP copolymers on the optical and electrochemical band gaps and the effective exciton binding energy is investigated for six different aromatic linkers. The optical band gap is related to the electron-donating properties of DTP and the electron-withdrawing properties of DPP but likewise strongly affected by the nature of the linker and varies between 1.13 and 1.80 eV for the six different linkers. The lowest optical band gaps are found for linkers that either raise the highest occupied molecular orbital or lower the lowest unoccupied molecular orbital most, while the highest optical band gap is found for phenyl linkers that have neither strong donating nor strong accepting properties. Along with the optical band gap, the electrochemical band gap also changes, but to a lesser extent from 1.46 to 1.89 eV. The effective exciton binding energy ( ), defined as the difference between the electrochemical and optical band gaps, decreases with an increasing band gap and reaches a minimum of 0.09 eV for the copolymer with the highest band gap, that is, with phenyl linkers. The reduction in with an increasing band gap is tentatively explained by a reduced electronic interaction between the DTP and DPP units when the HOMO localizes on DTP and the LUMO localizes on DPP. Support for this explanation is found in the molar absorption coefficient of the copolymers, which shows an overall decreasing trend with decreasing .

摘要

研究了在交替的DPP-DTP共聚物中,位于缺电子的2,5-二氢吡咯并[3,4-]吡咯-1,4-二酮(DPP)和富电子的二噻吩并[3,2-:2',3'-]吡咯(DTP)单元之间的π共轭连接基的性质对光学和电化学带隙以及有效激子结合能的影响,涉及六种不同的芳香族连接基。光学带隙与DTP的供电子性质和DPP的吸电子性质有关,但同样受到连接基性质的强烈影响,六种不同连接基的光学带隙在1.13至1.80 eV之间变化。对于那些要么使最高占据分子轨道升高最多,要么使最低未占据分子轨道降低最多的连接基,发现其光学带隙最低;而对于既没有强供电子性质也没有强吸电子性质的苯基连接基,发现其光学带隙最高。随着光学带隙的变化,电化学带隙也会改变,但变化程度较小,从1.46 eV到1.89 eV。有效激子结合能( )定义为电化学带隙与光学带隙之差,它随着带隙的增加而减小,对于带隙最高的共聚物(即含有苯基连接基的共聚物),有效激子结合能达到最小值0.09 eV。随着带隙增加, 减小的现象初步解释为当最高占据分子轨道(HOMO)定域在DTP上且最低未占据分子轨道(LUMO)定域在DPP上时,DTP和DPP单元之间的电子相互作用减弱。在共聚物的摩尔吸收系数中发现了对这一解释的支持,摩尔吸收系数总体上随着 的减小而呈下降趋势。

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