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Molecular Packing and Electronic Processes in Amorphous-like Polymer Bulk Heterojunction Solar Cells with Fullerene Intercalation

机译:富勒烯插层的非晶态聚合物本体异质结太阳能电池中的分子堆积和电子过程

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The interpenetrating morphology formed by the electron donor and acceptor materials is critical for the performance of polymer:fullerene bulk heterojunction (BHJ) photovoltaic (PV) cells. In this work we carried out a systematic investigation on a high PV efficiency (>6%) BHJ system consisting of a newly developed 5,6-difluorobenzo[c] thiadiazole-based copolymer, PFBT-T20TT, and a fullerene derivative. Grazing incidence X-ray scattering measurements reveal the lower-ordered nature of the BHJ system as well as an intermixing morphology with intercalation of fullerene molecules between the PFBT-T20TT lamella. Steady-state and transient photo-induced absorption spectroscopy reveal ultrafast charge transfer (CT) at the PFBT-T20TT/fullerene interface, indicating that the CT process is no longer limited by exciton diffusion. Furthermore, we extracted the hole mobility based on the space limited current (SCLC) model and found that more efficient hole transport is achieved in the PFBT-T20TT:fullerene BHJ as compared to pure PFBT-T20TT, showing a different trend as compared to the previously reported highly crystalline polymer:fullerene blend with a similar intercalation manner. Our study correlates the fullerene intercalated polymer lamella morphology with device performance and provides a coherent model to interpret the high photovoltaic performance of some of the recently developed weakly-ordered BHJ systems based on conjugated polymers with branched side-chain.
机译:电子给体和受体材料形成的互穿形态对于聚合物:富勒烯本体异质结(BHJ)光伏(PV)电池的性能至关重要。在这项工作中,我们对高PV效率(> 6%)BHJ系统进行了系统研究,该系统由新开发的5,6-二氟苯并[c]噻二唑基共聚物,PFBT-T20TT和富勒烯衍生物组成。掠入射X射线散射测量揭示了BHJ系统的低阶性质,以及在PFBT-T20TT薄片之间插入富勒烯分子的混合形态。稳态和瞬态光诱导吸收光谱揭示了PFBT-T20TT /富勒烯界面的超快电荷转移(CT),表明CT过程不再受激子扩散的限制。此外,我们基于空间有限电流(SCLC)模型提取了空穴迁移率,发现与纯PFBT-T20TT相比,PFBT-T20TT:富勒烯BHJ实现了更有效的空穴传输,与纯PFBT-T20TT相比,呈现出不同的趋势以前报道的高结晶度的聚合物:富勒烯共混物具有类似的嵌入方式。我们的研究将富勒烯插层聚合物薄片的形态与器件性能相关联,并提供了一个连贯的模型来解释一些最近开发的,基于具有支链侧链的共轭聚合物的弱有序BHJ系统的高光伏性能。

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