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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >The finale of a trilogy: comparing terpolymers and ternary blends with structurally similar backbones for use in organic bulk heterojunction solar cells
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The finale of a trilogy: comparing terpolymers and ternary blends with structurally similar backbones for use in organic bulk heterojunction solar cells

机译:三部曲的结局:将三元共聚物和三元共混物与结构类似的骨架进行比较,用于有机散装异质结太阳能电池

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摘要

Building on our previous works that compared the efficacy of terpolymers vs. ternary blends in improving the performance of bulk heterojunction organic solar cells, the final piece of this series of studies focuses on comparing terpolymer and ternary blends constructed with two polymers with structurally similar backbones (monoCNTAZ and FTAZ) yet markedly different open circuit voltage ( V _(oc) ) values. Terpolymers and ternary blends of five different ratios were studied and the results demonstrate that while the overall performance of both the systems is similar, the ternary blends exhibit higher short circuit current ( J _(sc) ) values, while the terpolymers exhibit higher V _(oc) values. Investigation of the charge transfer state using low-energy external quantum efficiency (EQE) indicates that the ternary blends are governed by a parallel-like mechanism, while the terpolymer does not follow this mechanism. The key morphological difference between the systems, as elucidated by resonance soft X-ray scattering (RSoXS), is the slightly smaller size (~60 nm) of domains in the ternary blends compared to that of the terpolymer (~80 nm), which may affect exciton harvesting in the terpolymer system and lead to lower J _(sc) values. In addition, a lower driving force for the formation of charge transfer (CT) state is also likely to contribute to the lower J _(sc) values in the terpolymer system. All together, the data show that structurally similar (perhaps even miscible) polymers still exhibit key differences in performance when paired in terpolymers vs. ternary blends and allow us to further illuminate the underlying mechanisms of such complex systems.
机译:在我们以前的作品上,比较了三元共混物在提高散装异质结的功效方面的疗效,这一系列研究的最终一部分侧重于比较用两个聚合物构成的三元共聚物和三元共混物,其具有结构上具有结构上类似的骨架( Monocntaz和FTAZ)却明显不同的开路电压(v _(oc))值。研究了五种不同比例的三元共聚物和三元共混物,结果表明,虽然两个系统的整体性能相似,但三元共混物具有较高的短路电流(J _(SC))值,而三元共聚物表现出更高的v _ (OC)值。使用低能量外量子效率(EQE)的电荷转移状态研究表明三元共混物由平行的机制控制,而三元共聚物不遵循这种机制。通过共振软X射线散射(RsOxs)阐明的系统之间的关键形态差异是三元共混物中的尺寸较小的尺寸(〜60nm),与三元共聚物(〜80nm)相比,这可能会影响萜酯系统中的激子收获,并导致下游J _(SC)值。另外,用于形成电荷转移(CT)状态的较低驱动力也可能有助于Terpolymer系统中的下j _(sc)值。全部,数据显示,当在三元共混物中配对时,结构相似(也许甚至混溶)聚合物仍然表现出性能的关键差异,并使我们进一步照亮这种复杂系统的潜在机制。

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