在HTL/PTB7界面上使用Mg和Pd离子增强p掺杂和有机太阳能电池效率

Jin Hee Lee , Merve Nur Ekmekci , Yeasin Khan , Bright Walker , Jung Hwa Seo
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摘要

本文研究了将镁、钯金属与有机聚合物聚苯乙烯磺酸盐(PSS)结合的新型空穴传输层(HTLs)在有机太阳能电池(OSCs)中的应用。单独使用时,这些html显示出各种缺点;然而,将它们与基准材料PEDOT:PSS混合可以缓解这些问题并提高效率。紫外光电子能谱(UPS)和x射线光电子能谱(XPS)测量提供了HTL/PTB7界面的界面能级对准、电子能带结构和能带弯曲的详细了解。单Mg:PSS和Pd:PSS OSCs的效率分别为6.232和5.836%。较低的开路电压(VOC)和填充因子(FF)归因于光强下的俄歇复合。UPS和XPS也表明,PTB7的空穴萃取能力受到阻碍,导致屏障处的复合。通过与PEDOT:PSS共混,Mg:PSS和Pd:PSS的效率分别提高到8.356%和8.303%。这种改进是由于在暗电流测量中观察到的更高的并联电阻和更低的串联电阻减少了电流泄漏。此外,HTL/PTB7界面上欧姆接触的形成增强了空穴提取,减少了复合。本研究强调了盐盐中混合有机-金属HTL结构在调制能量带结构方面的潜力,为优化盐盐效率和性能选择金属-有机组合提供了见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced p-doping and efficiency in organic solar cells using Mg and Pd ions at the HTL/PTB7 interface
This study investigates the application of new hole transport layers (HTLs) integrating magnesium and palladium metals with the organic polymer poly(styrene sulfonate) (PSS) in organic solar cells (OSCs). When used alone, these HTLs exhibited various drawbacks; however, blending them with the benchmark material PEDOT:PSS mitigated these issues and improved efficiency. Ultraviolet photoelectron spectroscopy (UPS) and X-ray photoelectron spectroscopy (XPS) measurements provided a detailed understanding of the interfacial energy level alignment, electronic band structure, and band bending at the HTL/PTB7 interface. Single Mg:PSS and Pd:PSS OSCs showed efficiencies of 6.232 and 5.836%, respectively. The relatively low open-circuit voltage (VOC) and fill factor (FF) were attributed to Auger recombination under light intensity. UPS and XPS also indicated that the hole extraction capability of PTB7 was hindered, leading to recombination at the barrier. By blending with PEDOT:PSS, the efficiencies of Mg:PSS and Pd:PSS were improved to 8.356 and 8.303%, respectively. This improvement was due to reduced current leakage, resulting from higher shunt resistance and lower series resistance, as observed in dark current measurements. Additionally, the formation of ohmic contacts at the HTL/PTB7 interface enhanced hole extraction and reduced recombination. This study underscores the potential of mixed organic-metal HTL structures in OSCs to modulate energy band structures, providing insights into the selection of metal-organic combinations for optimizing OSC efficiency and performance.
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