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Magnetic field effects in dye-sensitized solar cells controlled by different cell architecture

机译:受不同电池结构控制的染料敏化太阳能电池中的磁场效应

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The charge recombination and exciton dissociation are generally recognized as the basic electronic processes limiting the efficiency of photovoltaic devices. In this work, we propose a detailed mechanism of photocurrent generation in dye-sensitized solar cells (DSSCs) examined by magnetic field effect (MFE) technique. Here we demonstrate that the magnitude of the MFE on photocurrent in DSSCs can be controlled by the radius and spin coherence time of electron-hole (e-h) pairs which are experimentally modified by the photoanode morphology (TiO2 nanoparticles or nanotubes) and the electronic orbital structure of various dye molecules (ruthenium N719, dinuclear ruthenium B1 and fully organic squaraine SQ2 dyes). The observed MFE is attributed to magnetic-field-induced spin-mixing of (e-h) pairs according to the Δg mechanism.
机译:电荷复合和激子离解通常被认为是限制光伏器件效率的基本电子过程。在这项工作中,我们提出了通过磁场效应(MFE)技术检查的染料敏化太阳能电池(DSSC)中光电流产生的详细机制。在这里,我们证明了DSSCs中光电流MFE的大小可以通过电子-空穴(eh)对的半径和自旋相干时间来控制,电子-空穴对的半径和自旋相干时间可以通过光阳极形态(TiO2纳米颗粒或纳米管)和电子轨道结构进行实验性地修改各种染料分子(钌N719,双核钌B1和完全有机的方酸SQ2染料)。根据Δg机制,观察到的MFE归因于(e-h)对的磁场诱导的自旋混合。

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