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13% Efficiency Hybrid Organic/Silicon-Nanowire Heterojunction Solar Cell via Interface Engineering

机译:通过接口工程实现13%效率的有机/硅-纳米线异质结混合太阳能电池

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摘要

Interface carrier recombination currently hinders the performance of hybrid organic--silicon heterojunction solar cells for high-efficiency low-cost photovoltaics. Here, we introduce an intermediate 1,1-bis[(di-4-tolylamino)phenyl]cyclohexane (TAPC) layer into hybrid heterojunction solar cells based on silicon nanowires (SiNWs) and conjugate polymer poly(3,4-ethylenedioxy-thiophene):poly(styrenesulfonate) (PEDOT:PSS). The highest power conversion efficiency reaches a record 13.01%, which is largely ascribed to the modified organic surface morphology and suppressed saturation current that boost the open-circuit voltage and fill factor. We show that the insertion of TAPC increases the minority carrier lifetime because of an energy offset at the heterojunction interface. Furthermore, X-ray photoemission spectroscopy reveals that TAPC can effectively block the strong oxidation reaction occurring between PEDOT:PSS and silicon, which improves the device characteristics and assurances for reliability. These learnings point toward future directions for versatile interface engineering techniques for the attainment of highly efficient hybrid photovoltaics.
机译:目前,界面载流子复合阻碍了有机-硅异质结混合太阳能电池在高效低成本光伏电池中的性能。在这里,我们将中间的1,1-双[(二-4-甲苯基氨基)苯基]环己烷(TAPC)层引入基于硅纳米线(SiNWs)和共轭聚合物聚(3,4-乙撑二氧噻吩)的混合异质结太阳能电池中):聚(苯乙烯磺酸盐)(PEDOT:PSS)。最高的功率转换效率达到了创纪录的13.01%,这在很大程度上归因于改性后的有机表面形态和抑制了饱和电流,从而提高了开路电压和填充系数。我们表明,由于异质结界面处的能量偏移,TAPC的插入增加了少数载流子的寿命。此外,X射线光发射光谱表明,TAPC可以有效地阻止PEDOT:PSS与硅之间发生的强烈氧化反应,从而改善了器件特性并确保了可靠性。这些学习为通用接口工程技术的未来发展指明了方向,以实现高效的混合光伏技术。

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