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Highly conductive and stable graphene/PEDOT:PSS composite as a metal free cathode for organic dye-sensitized solar cells

机译:高导电且稳定的石墨烯/ PEDOT:PSS复合材料作为有机染料敏化太阳能电池的无金属阴极

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摘要

Platinum (Pt) as the counter electrode (CE) in dye-sensitized solar cells (DSSCs) is expensive and non-optimal for cobalt(ii/iii) redox couples, which can tune and improve the performance of DSSCs, thus motivating the search for replacements of the Pt CE. Graphene nanoplatelets (GnPs) are possible alternatives to Pt CEs but they are mechanically unstable as CEs due to their poor substrate adhesion. Here we report a new type of PEDOT:PSS (PP)/GnP (PPG) composite that maintains the catalytic performance of GnPs with enhanced adhesion to the substrate via a conductive PEDOT matrix. The resultant PPG exhibited extremely low charge-transfer resistance (R-ct) compared to Pt in its role as an electrocatalyst toward a Co(bpy)(3)(2+/3+) (bpy = 2,2-bipyridine) redox couple, and displayed extremely high electrochemical stability for Co(bpy)(3)(3+) reduction even after 1000 cycles. The inter-stacking of GnP layers between PEDOT and PSS was confirmed by XPS and Raman spectra. It helps to delocalize charges in the PEDOT backbone and rapidly transfers electrons from the external circuit to Co(bpy)(3)(3+). This reduces the R-ct and ultimately improves the photovoltaic performance. The DSSC based on Y123 sensitizer and PPG-CE showed a higher photovoltaic performance of 8.33% than its Pt counterpart does (7.99%) under the optimized conditions.
机译:作为染料敏化太阳能电池(DSSCs)的对电极(CE)的铂(Pt)是昂贵的且对钴(II / III)氧化还原耦合的昂贵且不最佳,可以调整和改善DSSC的性能,从而激励搜索用于PT CE的替代品。石墨烯纳米缩素(GNPS)是PT CES的替代品,但由于它们的基材粘附性差,它们是CES的机械不稳定。在这里,我们报告了一种新型的PEDOT:PSS(PP)/ GNP(PPG)复合材料,其通过导电PEDOT基质保持GNP的催化性能,通过导电佩特基基质对基板增强。与朝向CO(BPY)(3)(2 + / 3 +)(BPY = 2,2-硼吡啶)氧化还原的氧化还原相比,所得PPG与PT相比表现出极低的电荷转移电阻(R-CT)。夫妇,并且甚至在1000次循环之后均显示CO(BPY)(3)(3)(3)(3)的高电化学稳定性。通过XPS和拉曼光谱确认PEDOT和PS之间的GNP层的互连。它有助于将踏板骨架中的电荷删除,并从外部电路快速传送电子到CO(BPY)(3)(3)。这减少了R-CT并最终提高了光伏性能。基于Y123敏化剂和PPG-CE的DSSC显示出比优化条件下的PT对应物(7.99%)的光伏性能较高8.33%。

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  • 来源
    《RSC Advances》 |2018年第34期|共9页
  • 作者单位

    Dongguk Univ Res Ctr Photoenergy Harvesting &

    Convers Technol Dept Energy Mat &

    Engn 26 Pil Dong 3 Ga Seoul 04620 South Korea;

    Konkuk Univ Nanotechnol Res Ctr Chungju 27478 South Korea;

    Ulsan Natl Inst Sci &

    Technol Sch Energy &

    Chem Engn Ctr Dimens Controllable Organ Frameworks 50 UNIST Ulsan 44919 South Korea;

    Dongguk Univ Res Ctr Photoenergy Harvesting &

    Convers Technol Dept Energy Mat &

    Engn 26 Pil Dong 3 Ga Seoul 04620 South Korea;

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  • 正文语种 eng
  • 中图分类 化学;
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