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首页> 外文期刊>Journal of Photochemistry and Photobiology, A. Chemistry >Electrochemical impedance and X-ray photoelectron spectroscopic analysis of dye-sensitized liquid electrolyte based SnO2/ZnO solar cell
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Electrochemical impedance and X-ray photoelectron spectroscopic analysis of dye-sensitized liquid electrolyte based SnO2/ZnO solar cell

机译:染料敏化液体电解质SnO2 / ZnO太阳能电池的电化学阻抗和X射线光电子能谱分析

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摘要

A dye-sensitized solar cell based on interconnected SnO2 nanoparticle matrix covered with a thin outer shell of ZnO, N719 dye, I~-/I_3~- in acetonitrile liquid electrolyte system and lightly platinized FTO counter electrode shows significantly enhanced performance when compared to similar cells made with either pristine SnO2 or pristine ZnO interconnected nanoparticles. Attempts have been made to investigate the reasons for such an improvement using the information obtained from X-ray photoelectron spectroscopy (XPS) and the electrochemical impedance spectroscopy (E1S). The XPS results reveal that the interconnected nanoparticluar SnO2 matrix surfaces are fully covered by a ~1 nm thick outer shell of a ZnO layer. E1S results disfavour the idea of direct injection of electrons from the excited dye molecules across the thin outer shell of ZnO into the conduction band of SnO2 but supports the fact that electrons are first injected to the CB of ZnO and subsequently to the CB of SnO2 particles both involving trapping and detrapping at each stage. The electron transport along the interconnected SnO2 nanoparticles also involves anomalous diffusion characterized by a straight line of inclination greater than 45° in the complex impedance plot. This anomalous diffusion is attributed to the trap mediated electron transport.
机译:基于相互连接的SnO2纳米颗粒基质的染料敏化太阳能电池,该基质覆盖有薄薄的ZnO外壳,N719染料,乙腈液体电解质系统中的I〜-/ I_3〜-和轻度镀铂的FTO对电极,与同类产品相比,其性能显着增强原始SnO2或原始ZnO互连的纳米粒子制成的电池。已经尝试使用从X射线光电子能谱(XPS)和电化学阻抗谱(E1S)获得的信息来研究进行这种改进的原因。 XPS结果表明,相互连接的纳米颗粒SnO2基质表面被〜1 nm厚的ZnO层外壳完全覆盖。 E1S结果不利于将电子从受激发的染料分子穿过ZnO的薄外壳直接注入SnO2的导带中的想法,但支持电子先注入ZnO的CB,然后注入SnO2的CB的事实。都涉及在每个阶段的捕获和解除捕获。沿着相互连接的SnO2纳米粒子的电子传输还涉及异常扩散,其特征是在复数阻抗图中的倾斜直线大于45°。这种异常扩散归因于陷阱介导的电子传输。

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