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Simplistic wet-chemical coalescence of ZnO with Al_2O_3 and SnO_2 for enhanced photocatalytic and electrochemical performance

机译:ZnO与Al_2O_3和SnO_2的简单湿化学合并以增强光催化和电化学性能

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摘要

A wet-chemical route for the development of Al2O3-ZnO and SnO2-ZnO hierarchical heterostructures (HHSs) was opted to enhance the photocatalytic and electrochemical properties of SnO2 and Al2O3 nanoparticles. Successful coalescence of ZnO hierarchical structure with Al2O3 and SnO2 significantly increased the degradation of Congo red dye under ultraviolet irradiation. More importantly, SnO2-ZnO HHS exhibited superior photocatalytic activity than Al2O3-ZnO which was credited to its improved charge carrier generation and transfer characteristics, revealed using in-depth electrochemical spectroscopy (cyclic voltammetry and electro-chemical impedance spectroscopy). In addition, electrochemical investigation affirmed the photoanodic efficacy of HHSs in polysulfide electrolyte. SnO2-ZnO HHS exhibited optimal electron-hole generation and transfer characteristics (e.g., similar to 17.5 omega charge carrier transfer resistance at photoanode/polysulfide electrolyte interface), affirming its suitability for quantum-dot sensitized solar cells.
机译:选择了湿化学方法开发Al2O3-ZnO和SnO2-ZnO分层异质结构(HHSs),以增强SnO2和Al2O3纳米粒子的光催化和电化学性能。 ZnO分层结构与Al2O3和SnO2的成功结合显着增加了紫外线照射下刚果红染料的降解。更重要的是,SnO2-ZnO HHS表现出比Al2O3-ZnO更好的光催化活性,这归因于其改进的电荷载流子生成和转移特性,这是通过深入的电化学光谱法(循环伏安法和电化学阻抗谱法)揭示的。此外,电化学研究证实了HHS在多硫化物电解质中的光阳极功效。 SnO2-ZnO HHS表现出最佳的电子空穴生成和传输特性(例如,类似于在光电阳极/聚硫化物电解质界面处的17.5Ω载流子传输电阻),从而证实了其对量子点敏化太阳能电池的适用性。

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