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Efficient, dopant free phenazine based hole transporting materials for high performance perovskite solar cells

机译:高效的高效性掺杂苯氮杂的孔输送材料的高效性钙钛矿太阳能电池

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The present work demonstrates, a new type of phenazine core-based hole transporting materials (HTMs) were synthesized and tested for improved power conversion efficiency via enhanced short-circuit density (Jsc) of 25.80 mA/cm2, which is much higher as compared with Spiro-OMeTAD benchmark material in perovskite solar cells (PSCs). All the synthesized new phenazine core-based HTMs were thoroughly characterized with various spectroscopic techniques. The strong electron-donating triphenylamine (D) and electron-accepting phenazine (A) units communicate through a pyrene system (pi) with large intramolecular charge transfer (ICT) character in these HTMs and hence no requirement of additional dopants or additives throughout the device fabrication process. The framework of the PSCs device, FTOmeso-TiO2CH3NH3PbI3ew-HTMsAg, was assembled through new HTMs such as DPPP, DPPPCl, DPPPF, DPPPM and DPPPOMe and Methylammonium lead iodide (CH3NH3PbI3) as materials. PSCs with DPPPF and Spiro-OMeTAD HTMs, revealed power conversion efficiency (PCE) of 18.20% and 17.57% with an active area of 3.02 and 2.16 cm2 respectively. The stability of the devices was examined after 60 days, and found the PCE of 17.48% for DPPPF based device, whereas spiro-OMeTAD based device revealed PCE of 8.34%. Furthermore, the present study demonstrates DPPP series HTMs as possible replacements to the Spiro-OMeTAD, owing to their very simple synthesis process and dopant-free conditions, and their better device performance.
机译:本作者证明,合成了一种新型的苯嗪芯的空穴传输材料(HTMS),并通过增强的短路密度(JSC)为25.80mA / cm2的增强短路密度(JSC)来进行改进的功率转换效率。与普罗索特太阳能电池(PSCS)螺纹欧姆省基准材料。所有合成的新的苯吡啶核心的HTM彻底以各种光谱技术进行了彻底的表征。强电子提供的三苯胺(D)和电子接受苯吡啶(A)单元通过这些HTMS中具有大的分子内电荷转移(ICT)特征的芘系统(PI)进行通信,因此无需在整个装置中要求额外的掺杂剂或添加剂制造过程。 PSCS装置FTO Meso-TiO2 CH3NH3PBI3 New-HTMS AG的框架通过新的HTM组装,例如DPPP,DPPPCL,DPPPF,DPPPM和DPPPOMO和甲基铅碘(CH3NH3PBI3)作为材料。具有DPPPF和Spiro-Ometad HTMS的PSC,显示出18.20%和17.57%的功率转换效率(PCE)分别为3.02和2.16cm 2。在60天后检查了器件的稳定性,发现了基于DPPPF的装置的PCE为17.48%,而基于螺皮的装置揭示了PCE的8.34%。此外,本研究表明,由于其具有非常简单的合成过程和无掺杂剂条件,以及它们更好的设备性能,因此显示了DPPP系列HTMS。

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