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首页> 外文期刊>Chemical engineering journal >Solar photocatalytic fuel cell using CdS-TiO2 photoanode and air-breathing cathode for wastewater treatment and simultaneous electricity production
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Solar photocatalytic fuel cell using CdS-TiO2 photoanode and air-breathing cathode for wastewater treatment and simultaneous electricity production

机译:使用CdS-TiO2光电阳极和空气呼吸阴极的太阳能光催化燃料电池,用于废水处理和同时发电

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摘要

Solar photocatalytic fuel cell (PFC) is a promising technology for environmental-friendly wastewater treatment and simultaneous production of electricity. In this study, PFC was enhanced by using CdS quantum-dot-sensitized TiO2 nanorod array deposited onto FTO glass as effective photoanode. Moreover, gas diffusion electrode was employed to improve oxygen reduction reaction at the cathode. The material characterization shows that an array of 1.2-μm TiO2 nanorods is decorated with 10-nm CdS quantum dots, which significantly improve solar light harvesting ability. The results of the PFC performance study indicate that light irradiation, acetic acid concentration, electrolyte pH and conductivity have significant influence on the short-circuit current and maximum power density. When the PFC operates at the optimum pH of 4.6, the short-circuit current and maximum power density are 1.79 mA/cm~2 and 1134 mW/ cm~2, respectively. It is found that increasing the electrolyte conductivity is an effective approach to improve the PFC performance. The highest short-circuit current of 5.1 mA/cm~2 and maximum power density of 3980 mW/cm~2 are obtained with electrolyte having a conductivity of 63.1-mS/cm. In addition, the test results of various pure and practical organic substances in PFC further suggest that it is feasible to use sunlight as a driving force to clean up wastewater with simultaneous electricity production.
机译:太阳能光催化燃料电池(PFC)是一种有前途的技术,可用于环境友好的废水处理和同时发电。在这项研究中,通过使用沉积在FTO玻璃上的CdS量子点敏化的TiO2纳米棒阵列作为有效的光电阳极来增强PFC。此外,采用气体扩散电极来改善阴极处的氧还原反应。材料表征表明,用10 nm CdS量子点装饰了1.2μmTiO2纳米棒阵列,这大大提高了太阳光的收集能力。 PFC性能研究的结果表明,光辐照,乙酸浓度,电解质pH和电导率对短路电流和最大功率密度有显着影响。当PFC在4.6的最佳pH下运行时,短路电流和最大功率密度分别为1.79 mA / cm〜2和1134 mW / cm〜2。发现增加电解质的电导率是改善PFC性能的有效方法。用电导率为63.1-mS / cm的电解质可获得5.1 mA / cm〜2的最高短路电流和3980 mW / cm〜2的最大功率密度。此外,PFC中各种纯净实用的有机物质的测试结果进一步表明,利用日光作为驱动力来净化废水并同时发电是可行的。

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