首页> 外文期刊>Applied Catalysis, B. Environmental: An International Journal Devoted to Catalytic Science and Its Applications >Electrochemically self-doped WO3/TiO2 nanotubes for photocatalytic degradation of volatile organic compounds
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Electrochemically self-doped WO3/TiO2 nanotubes for photocatalytic degradation of volatile organic compounds

机译:用于光催化的挥发性有机化合物的电化学自掺杂WO3 / TiO2纳米管

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摘要

In this study, an electrochemically self-doped WO3/TiO2 nanotubes (R-WO3/TNTs) composite film was developed for the photocatalytic degradation of waste gas. The doping of oxygen vacancies (OVs) into the heterojunction of WO3/TNTs was conducted by a simple electrochemical approach, by which the quantity and distribution of OVs on surface as well as bulk were tailored with respect to the applied cathodic potential and the duration of the treatment. With an increase of applied cathodic potential as well as the duration, the quantity of OVs on WO3/TNTs was observed to be consistently raised, while those presented in the surface were raised initially and further showed a plateau trend as the duration extended at a fixed potential. The incorporation of OVs into WO3/TNTs enhanced the charge-transport resistance and reduced the electron-hole recombination, thereby showed an enhanced photocatalytic performance. The R-WO3/TNTs prepared by the electrochemical polarization process at -1.4 V (vs SCE) exhibited a 12 times higher photo-current density and obviously, an enhanced efficiency in the photocatalytic degradation of VOCs with a prolonging photostability compared to that of the pristine WO3/TNTs, under a simulated solar light irradiation. The single-time purification trial demonstrated the effectiveness of the R-WO3/TNTs composite in treating the VOCs for the practical application.
机译:在该研究中,开发了一种用于电化学自掺杂WO3 / TiO2纳米管(R-WO3 / TNT)复合膜,用于废气的光催化降解。通过简单的电化学方法对氧空位(OVS)掺杂到WO3 / TNT的异质结中,通过该方法对所施加的阴极电位和持续时间来定制表面的OVS的数量和分布以及散装量治疗。随着施加的阴极潜力以及持续时间的增加,观察到持续提高WO3 / TNT上的OV量,而最初提出过表面的那些,并进一步展示了高原趋势,因为持续时间在固定的情况下延伸潜在的。 OVS进入WO3 / TNT的掺入增强了电荷传输电阻并降低了电子 - 空穴重组,从而显示出增强的光催化性能。通过电化学偏振工艺制备的R-WO3 / TNT在-1.4V(VS SCE)上表现出12倍较高的光电流密度,并且显然,与延长的光稳定性相比,VOC的光催化降解的增强效率提高了原始WO3 / TNT,在模拟的太阳能光照射下。单时间净化试验证明了R-WO3 / TNTS复合物在治疗实际应用的VOC中的有效性。

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