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首页> 外文期刊>ACS applied materials & interfaces >Charge versus Energy Transfer Effects in High-Performance Perylene Diimide Photovoltaic Blend Films
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Charge versus Energy Transfer Effects in High-Performance Perylene Diimide Photovoltaic Blend Films

机译:高性能Per二酰亚胺光伏混合膜中的电荷与能量转移效应

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Perylene dimide (PDI)-based organic photovoltaic devices can potentially deliver high power conversion efficiency values provided the photon energy absorbed is utilized efficiently in charge transfer (CT) reactions instead of being consumed in nonradiative energy transfer (ET) steps. Hitherto, it remains unclear whether ET or CT primarily drives the photoluminescence (PL) quenching of the PDI excimer state in PDI-based blend films. Here, we affirm the key role of the thermally assisted PDI excimer diffusion and subsequent CT reaction in the process of PDI excimer PL deactivation. For our study we perform PL quenching experiments in the model PDI-based composite made of poly[4,8-bis(5-(2-ethylhexyl)thiophen-2-yl)benzo [1,2- b; 4,5-b '] dithiophene-2,6-diyl-alt- (4-(2-ethylhexanoyl)thieno[3,4-b]thiophene)-2-6-diyl] (PBDTTT-CT) polymeric donor mixed with the N,N'-bis(1-ethylpropyl)-perylene-3,4,9,10-tetracarboxylic diimide (PDI) acceptor. Despite the strong spectral overlap between the PDI excimer PL emission and UV vis absorption of PBDTTT-CT, two main observations indicate that no significant ET component operates in the overall PL quenching: the PL intensity of the PDI excimer (i) increases with decreasing temperature and (ii) remains unaffected even in the presence of 10 wt % content of the PBDTTT-CT quencher. Temperature-dependent wide-angle X-ray scattering experiments further indicate that nonradiative resonance ET is highly improbable due to the large size of PDI domains. The dominance of the CT over the ET process is verified by the high performance of devices with an optimum composition of 30:70 PBDTTT-CT:PDI. By adding 0.4 vol % of 1,8-diiodooctane we verify the plasticization of the polymer side chains that balances the charge transport properties of the PBDTTT-CT:PDI composite and results in additional improvement in the device efficiency. The temperature-dependent spectral width of the PDI excimer PL band suggests the presence of energetic disorder in the PDI excimer excited state manifold.
机译:如果吸收的光子能量在电荷转移(CT)反应中得到有效利用,而不是在非辐射能量转移(ET)步骤中被消耗,则基于dim二甲基(PDI)的有机光伏器件可以潜在地提供高功率转换效率值。迄今为止,尚不清楚ET或CT是否主要驱动基于PDI的共混膜中PDI准分子态的光致发光(PL)猝灭。在这里,我们确认了热辅助PDI准分子扩散和随后的CT反应在PDI准分子PL失活过程中的关键作用。对于我们的研究,我们在由聚[4,8-双(5-(2-(乙基乙基己基)噻吩-2-基)苯并[1,2-b; 4,5-b']二噻吩-2,6-二基-alt-(4-(2-乙基己基)噻吩并[3,4-b]噻吩)-2-6-二基](PBDTTT-CT)聚合物供体混合N,N'-双(1-乙基丙基)-per-3,4,9,10-四羧酸二酰亚胺(PDI)受体。尽管PDI准分子的PL发射和PBDTTT-CT的紫外可见吸收之间有很强的光谱重叠,但两个主要观察结果表明,在整个PL猝灭过程中没有明显的ET成分起作用:PDI准分子的PL强度(i)随着温度降低而增加(ii)即使在PBDTTT-CT淬灭剂的含量为10wt%的情况下也保持不受影响。与温度有关的广角X射线散射实验进一步表明,由于PDI域的尺寸较大,非辐射共振ET极不可能。 CT在ET过程中的优势已通过具有30:70 PBDTTT-CT:PDI最佳组成的设备的高性能来证明。通过添加0.4%(体积)的1,8-二碘辛烷,我们验证了聚合物侧链的增塑作用,该增塑作用平衡了PBDTTT-CT:PDI复合材料的电荷传输性能,并进一步提高了器件效率。 PDI受激准分子PL带的温度依赖性光谱宽度表明PDI受激准分子激发态流形中存在高能紊乱。

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