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Zeolitic-imidazolate frameworks derived Pt-free counter electrodes for high-performance quantum dot-sensitized solar cells

机译:沸石-咪唑盐骨架衍生的无铂对电极用于高性能量子点敏化太阳能电池

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摘要

Zeolitic-imidazole frameworks (ZIFs), as novel porous materials, are attracting much attention in several fields due to their special advantages such as large specific surface area, versatile porosity and well-connected networks. Here, we develop a porous ZIF-derived catalytic thin film, which was coated on the conducting glass as a counter electrode (CE) to substitute costly platinum for quantum dot-sensitized solar cells (QDSSCs). A ZIF layer is first prepared by coating ZIF-67 powders on the conducting glass, followed by the careful calcination treatments in sulfur vapour (sulfuration) or nitrogen gas (carbonization). The structure and morphologies of the derived porous film are characterized by the measurements of XRD, SEM and BET, and the electrochemical properties in the polysulfide solution are evaluated by the measurements of Tafel curves and electrochemical impedance spectroscopies. The derived porous film is used as a CE to fabricate QDSSC with CdSe quantum dot-sensitized TiO2 nanocrystalline thin film and the polysulfide solution. Compared with the photovoltaic performance of CdSe QDSSCs based on the CE prepared by the different sulfuration conditions, QDSSC based on the CE derived by the sulfuration for 30 min shows an excellent light-to-electric conversion efficiency of 3.77%, it is even higher than that of QDSSC based on Pt CE (2.98%). This work will open a new avenue to design a facile, low-cost and renewable CE for QDSSC.
机译:沸石-咪唑骨架(ZIFs)作为一种新型的多孔材料,由于其特殊的优势(例如大的比表面积,通用的孔隙率和良好的连接网络)而受到了许多领域的关注。在这里,我们开发了一种多孔的ZIF衍生的催化薄膜,该薄膜涂覆在导电玻璃上作为对电极(CE),以替代昂贵的铂代替量子点敏化太阳能电池(QDSSC)。首先通过在导电玻璃上涂覆ZIF-67粉末来制备ZIF层,然后在硫蒸气(硫化)或氮气(碳化)中进行仔细的煅烧处理。通过X射线衍射,扫描电镜和BET测量来表征所得多孔膜的结构和形态,并通过Tafel曲线和电化学阻抗谱测量来评价多硫化物溶液中的电化学性质。所得的多孔膜作为CE材料,用CdSe量子点敏化的TiO2纳米晶薄膜和多硫化物溶液制备QDSSC。与在不同硫化条件下制备的基于CE的CdSe QDSSCs的光电性能相比,基于硫化30分钟的CE制备的QDSSC具有3.77%的优异光电转换效率,甚至高于基于Pt CE的QDSSC(2.98%)。这项工作将为设计QDSSC的便捷,低成本和可再生CE开辟一条新途径。

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