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Densely Packed Siloxane Barrier for Blocking Electron Recombination in Dye-Sensitized Solar Cells

机译:密集包装的硅氧烷阻隔剂,用于阻止染料敏化太阳能电池中的电子复合。

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A challenge in developing photovoltaic devices is to minimize the loss of electrons, which can seriously deteriorate energy conversion efficiency. In particular, minimizing this negative process in dye-sensitized solar cells (DSCs) is imperative. Herein, we use three different kinds of siloxanes, which are adsorbable to titania surfaces and polymerizable in forming a surface passivation layer, to reduce the electron loss. The siloxanes used are tetraethyl orthosilicate (TEOS or compound A), 1-(3-(1H-imidazol-1-yl)propyl)-3-(3-triethoxysilyl) propyl) urea (compound B), and N-(3-triethoxysilylpropyl)-N'[3-(3-methyl-1H-imidazol-3-ium) propyl] urea iodide (compound C). Titania surface passivation by either compound B or C was comparatively more effective in increasing the electron lifetime than TEOS. In the case of small-sized TEOS combined with either large-sized compound B or C, a thinner and denser passivation layer was presumably developed, thus increasing electron lifetime further. Intriguingly, device AB shows the longest electron lifetime, whereas device AC has the highest energy conversion efficiency among these experimental conditions. These results suggest that, in this special case, the electron lifetime may not be a dominant parameter in determining the energy conversion efficiency.
机译:开发光伏装置的挑战是使电子的损失最小化,这会严重降低能量转换效率。特别地,必须最小化染料敏化太阳能电池(DSC)中的负面过程。在此,我们使用三种不同种类的硅氧烷,它们可吸附到二氧化钛表面并在形成表面钝化层时可聚合,以减少电子损失。使用的硅氧烷是原硅酸四乙酯(TEOS或化合物A),1-(3-(1H-咪唑-1-基)丙基)-3-(3-三乙氧基甲硅烷基)丙基)脲(化合物B)和N-(3 -三乙氧基甲硅烷基丙基)-N'[3-(3-甲基-1H-咪唑-3-基)丙基]碘化脲(化合物C)。化合物B或C的二氧化钛表面钝化在增加电子寿命方面比TEOS更有效。在将小尺寸TEOS与大尺寸化合物B或C结合使用的情况下,可能会形成更薄,更致密的钝化层,从而进一步延长了电子寿命。有趣的是,在这些实验条件下,设备AB的电子寿命最长,而设备AC的能量转换效率最高。这些结果表明,在这种特殊情况下,电子寿命可能不是决定能量转换效率的主要参数。

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