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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Synergistic recombination suppression by an inorganic layer and organic dye molecules in highly photostable quantum dot sensitized solar cells
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Synergistic recombination suppression by an inorganic layer and organic dye molecules in highly photostable quantum dot sensitized solar cells

机译:高度光稳定的量子点敏化太阳能电池中无机层和有机染料分子的协同重组抑制

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摘要

An inorganic layer and dye molecules have synergistically suppressed the recombination in a quantum dot sensitized solar cell (QDSSC), by the design of a structure featured TiO2-CdS-ZnS-N3 (N3: RuL2(NCS)2 (L = 2,2'-bipyridyl-4,4'-dicarboxylic acid)) hybrid photoanode. When fabricated into solar cells, a cobalt complex-based electrolyte rather than an iodine-based one was employed to obtain an impressive photostability for the devices. Raman and Photoluminescence (PL) measurements revealed that not only the CdS QDs were passivated by both the inorganic layer of ZnS and dye molecule of N3 but also N3 served as an efficient hole scavenger for the CdS QDs due to a type-ll energetic alignment between the two sensitizers. This role of N3 as an intermediary in hole extraction from CdS QDs to the electrolyte was further proven by the significant photovoltaic performance improvement of the CdS sensitized solar cell after ZnS deposition and N3 co-sensitization. The overall efficiency of the solar cell incorporated with TiO2-CdS-ZnS-N3 film exceeded the sum of the single CdS QDs and N3 dye sensitized solar cells. This enhancement is ascribed mainly to the synergistic recombination suppression by the inorganic layer ZnS and N3 co-sensitization, leading to inhibited recombination and increased electron lifetime, as illustrated by the electrochemical impedance spectroscopy (EIS) analysis.
机译:通过设计结构为TiO2-CdS-ZnS-N3(N3:RuL2(NCS)2(L = 2,2)的结构,无机层和染料分子协同抑制了量子点敏化太阳能电池(QDSSC)中的重组'-联吡啶基-4,4'-二羧酸))杂化光阳极。当制成太阳能电池时,采用了基于钴配合物的电解质而不是基于碘的电解质,从而获得了令人印象深刻的器件光稳定性。拉曼光谱和光致发光(PL)测量表明,不仅ZnS的无机层和N3的染料分子都钝化了CdS量子点,而且N3由于C型量子点之间的ll型能量对准而成为CdS量子点的有效空穴清除剂。两种敏化剂。在ZnS沉积和N3共敏化之后,CdS敏化太阳能电池的光伏性能有了显着提高,这进一步证明了N3在从CdS QD到电解质的空穴萃取中的中介作用。掺有TiO2-CdS-ZnS-N3薄膜的太阳能电池的整体效率超过了单个CdS QD和N3染料敏化太阳能电池的总和。这种增强主要归因于无机层ZnS和N3共敏化对协同重组的抑制,从而导致重组受到抑制并延长了电子寿命,如电化学阻抗谱(EIS)分析所示。

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