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A new solution-processed diketopyrrolopyrrole donor for non-fullerene small-molecule solar cells

机译:用于非富勒烯小分子太阳能电池的新型溶液处理的二酮吡咯并吡咯供体

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In solution-processed non-fullerene small-molecule solar cells (NF-SMSCs), the bulk-heterojunction active layer is blended by a small molecule donor and a non-fullerene small molecule acceptor. Synthesis of solution-processed small molecule donors is of the same importance as designing non-fullerene small molecule acceptors. In this paper, a new solution-processed diketopyrrolopyrrole (DPP)-based small molecule donor, namely DPP-BDT-T, was synthesized. The pure DPP-BDT-T film covers a broad spectrum from 500 nm to 700 nm with a low band gap of 1.72 eV. By choosing our newly reported perylene diimide (PDI) dimer, bis-PDI-T-EG, as the non-fullerene small molecule acceptor, the best NF-SMSC device showed a low efficiency of 0.12%. When using 2% 1,8-diiodooctane (DIO) as the additive, more acceptor molecules formed into π-π-stacks, accompanied by the increase of the phase size from 15 nm to 50 nm and the formation of continuous interpenetrating networks. This in turn enhanced the hole and electron mobilities (μ_n = 1.6 × 10~(-2) vs. 5.8 × 10~(-4) cm~2 V~(-1) s~(-1) and μ_e = 2,3 × 10~(-5) vs. 6.1 × 10~(-7) cm~2 V~(-1) s~(-1)) and the efficiency was enhanced to 1.6%. In another respect, the fluorescent emission from the blend films was enhanced by 10 times after using 2% DIO as the additive, suggesting less efficient photon-induced exciton separation at the interfaces of the donor and acceptor nanostructures. Accordingly, our case suggests that efficient sweepout of the separated electrons and holes from the nanostructural interfaces plays a role for efficient NF-SMSCs.
机译:在溶液处理的非富勒烯小分子太阳能电池(NF-SMSC)中,本体异质结活性层由小分子供体和非富勒烯小分子受体混合。溶液处理的小分子供体的合成与设计非富勒烯小分子受体的重要性相同。本文合成了一种新的基于溶液处理的基于二酮吡咯并吡咯(DPP)的小分子供体,即DPP-BDT-T。纯DPP-BDT-T膜覆盖500 nm至700 nm的宽光谱,带隙为1.72 eV。通过选择我们最新报道的per二酰亚胺(PDI)二聚体bis-PDI-T-EG作为非富勒烯小分子受体,最好的NF-SMSC设备显示出0.12%的低效率。当使用2%的1,8-二碘辛烷(DIO)作为添加剂时,更多的受体分子形成π-π堆积,伴随着相尺寸从15 nm增加到50 nm并形成连续的互穿网络。这又提高了空穴和电子迁移率(μ_n= 1.6×10〜(-2)与5.8×10〜(-4)cm〜2 V〜(-1)s〜(-1)和μ_e= 2 3×10〜(-5)和6.1×10〜(-7)cm〜2 V〜(-1)s〜(-1)),效率提高到1.6%。在另一方面,使用2%DIO作为添加剂后,共混膜的荧光发射增强了10倍,表明在供体和受体纳米结构的界面处光子诱导的激子分离效率较低。因此,我们的案例表明,从纳米结构界面有效清除分离出的电子和空穴对于有效的NF-SMSC具有重要作用。

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