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首页> 外文期刊>Macromolecules >Anthracene Based Conjugated Polymers: Correlation between π-π-Stacking Ability, Photophysical Properties, Charge Carrier Mobility, and Photovoltaic Performance
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Anthracene Based Conjugated Polymers: Correlation between π-π-Stacking Ability, Photophysical Properties, Charge Carrier Mobility, and Photovoltaic Performance

机译:蒽基共轭聚合物:π-π堆积能力,光物理性质,电荷载流子迁移率和光伏性能之间的相关性

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This article reports on the synthesis, characterization and properties of a series of anthracene- containing poly(p-phenylene-ethynylene)-alt-poly(p-phenylene-vinylene)s (PPE-PPV) copolymers with general constitutional unit (Ph-CtC-Anthr-CtC-Ph-CHdCH-Ph-CHdCH-)n denoted AnE-PV. Solely linear (AnE-PVaa, -ad, -ae) and solely branched (AnE-PVbb) as well as mixed linear and branched (AnE-PVab, -ac, -ba, -cc) alkoxy side chains were grafted to the backbone in order to tune the π-π-stacking ability of the materials. It has been possible to establish a correlation between π-π-stacking ability, absorptive behavior, charge carrier mobility, solar cell active layer nanoscale morphology and resulting photovoltaic performance. Solar cells energy conversion efficiencies between 0.34% and 3.14% were achieved. The best performancewas achieved fromAnE-PVab showing both stacking ability and highest π-π-stacking distance of 0.386 nm as compared to 0.380 nm for the others. Poorer performance resulted from polymers with no inclination to stack, AnE-PVba, -bb, although they exhibited the higher charge carrier mobilities. Hole mobilities range from 1.5 10-5 cm2/V.s (AnE-PVad) to 4.5 10-4 cm2/V.s (AnE-PVba). An increase of the open circuit voltage from~650mVto~900mVis observedwith decreasing side chain density. In case of the AnE-PVcc:PCBM(1:1) blend a 2-fold increase in solar cell efficiency (from 1% to 2%) was obtained when the active layer was spin cast from a 1:1 mixture of chloroform:chlorobenzene instead of using chlorobenzene.
机译:本文报道了一系列具有一般结构单元(Ph-P-)的含蒽的聚(对-亚苯基-乙炔基)-alt-聚(对-亚苯基-乙烯基)(PPE-PPV)共聚物的合成,表征和性能CtC-Anthr-CtC-Ph-CHdCH-Ph-CHdCH-)n表示为AnE-PV。仅线性(AnE-PVaa,-ad,-ae)和单独分支(AnE-PVbb)以及混合线性和分支(AnE-PVab,-ac,-ba,-cc)烷氧基侧链接枝到主链上为了调整材料的π-π堆积能力。已经有可能在π-π堆积能力,吸收行为,电荷载流子迁移率,太阳能电池活性层纳米级形态与所得光伏性能之间建立相关性。太阳能电池的能量转换效率达到0.34%至3.14%。 AnE-PVab表现出最佳性能,显示出堆叠能力和最大的π-π堆叠距离,为0.386 nm,相比之下,其他均为0.380 nm。尽管聚合物表现出较高的电荷载流子迁移率,但其性能却较差,这是由于没有倾斜的聚合物,AnE-PVba,-bb引起的。空穴迁移率范围从1.5 10-5 cm2 / V.s(AnE-PVad)到4.5 10-4 cm2 / V.s(AnE-PVba)。随着侧链密度的减小,开路电压从〜650mV增加到〜900mVis。在AnE-PVcc:PCBM(1:1)混合物的情况下,当从1:1氯仿混合物中旋铸活性层时,太阳能电池效率提高了2倍(从1%到2%):氯苯代替氯苯。

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