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Influence of anthocyanin co-pigment on electron transport and performance in black rice dye-sensitized solar cell

机译:花色苷共色素对黑米染料敏化太阳能电池电子传输和性能的影响

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This work reports the novel contribution of chlorophyll b as natural anthocyanin co-pigment in unpurified black rice extract for improved electron transport and performance of natural dye-sensitized solar cell. The dyes are extracted as prominent photosensitizers by considering the concentration, the dye electronic structure, the extraction, and immersion time. The anthocyanin dye containing 1.92 mM cyanidin-3-O-glucoside structure has been extracted without purification. Interestingly, 0.33 mM chlorophyll b is found as a natural co-sensitizer in unpurified anthocyanin. The role of chlorophyll b supporting the electron transfer of anthocyanin dye will be investigated for improved cell performance. Both purified and unpurified dyes are compared in the same anthocyanin concentration. The combined Tauc plot and voltametric method will be conducted to show the interfacial electronic band edges of TiO2-dye-electrolyte. Electrochemical impedance spectroscopy method will investigate electron transfer dynamic in both cell systems. As a result, chlorophyll b has dominantly acted as two intermediate states in boosting electron injection and dye regeneration to improve cell efficiency from 1.31 to 2.17 % due to the narrower LUMO-TiO2 conduction band gap and the narrower HOMO-iodide (I-) potential gap, respectively. According to the electron transport, the co-sensitizer contributes to the smaller transport resistance (R-t = 21.9 Omega), the higher chemical diffusion coefficient (D-n = 1.696 x 10(-3) cm(2)/s), the higher chemical capacitance (C-mu = 14.32 mu F), and the faster electron transport (tau(d) = 39.88 mu s).
机译:这项工作报告了叶绿素b作为天然花青素共色素在未纯化黑米提取物中的新贡献,以改善电子传输和天然染料敏化太阳能电池的性能。通过考虑浓度,染料电子结构,提取和浸泡时间,可以提取出染料作为重要的光敏剂。含有1.92 mM花青素3-O-葡糖苷结构的花青素染料未经纯化就被提取出来。有趣的是,在未纯化的花色苷中发现了0.33 mM的叶绿素b作为天然的增敏剂。将研究叶绿素b支持花色苷染料电子转移的作用,以改善细胞性能。在相同的花色苷浓度下比较纯化的和未纯化的染料。将Tauc图和伏安法相结合,以显示TiO2-染料-电解质的界面电子能带边缘。电化学阻抗谱法将研究两个电池系统中的电子转移动力学。结果,由于更窄的LUMO-TiO2导电带隙和更窄的HOMO-碘化物(I-)势,叶绿素b在促进电子注入和染料再生中起着两个中间状态的主导作用,从而将电池效率从1.31提高到2.17%。差距。根据电子传输,共敏化剂有助于降低传输电阻(Rt = 21.9 Omega),提高化学扩散系数(Dn = 1.696 x 10(-3)cm(2)/ s)和提高化学电容(C-mu = 14.32μF)和更快的电子传输(tau(d)= 39.88μs)。

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