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首页> 外文期刊>Chemical science >Predictably tuning the frontier molecular orbital energy levels of panchromatic low band gap BODIPY-based conjugated polymers
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Predictably tuning the frontier molecular orbital energy levels of panchromatic low band gap BODIPY-based conjugated polymers

机译:可预测地调整基于全色低带隙BODIPY的共轭聚合物的前沿分子轨道能级

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Here we report the synthesis, electrochemical properties, and optical properties of five novel π-conjugated alternating copolymers based on the BODIPY core. These polymers were synthesized via the Sonogashira polymerization reaction and contain BODIPY units alternating with comonomers such as 9,9-bis(2-ethylhexyl)-9H-fluorene (FL), 9-(2-ethylhexyl)-9H-carbazole (CBz), 2,2'-bithiophene (BT), 4,4-bis(2-ethylhexyl)-4H-cyclopenta[2,l-6:3,4-6']dithiophene (CPDT) and 4-(2-ethylhexyl)-4H-dithieno[3,2-6:2',3'-d]pyrrole (DTP). These comonomers were rationally chosen based on their gas phase ionization potential (IP) values estimated by density functional theory (DFT) calculations. Cyclic voltammetry on drop-cast thin films, as well as solutions of these polymers, revealed that the highest occupied molecular orbitals (HOMOs) of the resulting polymers correlated well with the ionization potentials (donor strength) of the comonomers. On the contrary, the lowest unoccupied molecular orbital (LUMO) energy levels of all copolymers were fairly invariant, independent of the comonomer used. This suggests that the BODIPY moiety provides the primary influence on the LUMO levels of the polymer. In addition to the experimentally determined HOMO/LUMO energy levels bearing good correlation with theoretical estimates, all polymers were found to possess broad absorption spectra covering the entire visible range, thus making them truly panchromatic. These polymers provide us with a toolset to tune the frontier molecular orbital energy levels, while retaining the low band gap and broad absorption of these polymers.
机译:在这里,我们报告了基于BODIPY核的五种新型π共轭交替共聚物的合成,电化学性质和光学性质。这些聚合物是通过Sonogashira聚合反应合成的,并包含与共聚单体(例如9,9-双(2-乙基己基)-9H-芴(FL),9-(2-乙基己基)-9H-咔唑(CBz))交替的BODIPY单元,2,2'-联噻吩(BT),4,4-双(2-乙基己基)-4H-环戊[2,l-6:3,4-6']二噻吩(CPDT)和4-(2-乙基己基)-4H-二硫代[3,2-6:2',3'-d]吡咯(DTP)。这些共聚单体是根据由密度泛函理论(DFT)计算得出的气相电离电势(IP)值合理选择的。滴铸薄膜的循环伏安法以及这些聚合物的溶液表明,所得聚合物的最高占据分子轨道(HOMO)与共聚单体的电离势(供体强度)密切相关。相反,所有共聚物的最低未占据分子轨道(LUMO)能级是相当不变的,与所使用的共聚单体无关。这表明BODIPY部分对聚合物的LUMO水平提供了主要影响。除了实验确定的HOMO / LUMO能级与理论估计值具有良好的相关性外,还发现所有聚合物都具有覆盖整个可见光范围的宽吸收光谱,因此使它们真正成为全色的。这些聚合物为我们提供了一个工具集,可调节前沿分子轨道的能级,同时保留这些聚合物的低带隙和宽吸收性。

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