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Carbon quantum dot sensitized Pt@Bi2WO6/FTO electrodes for enhanced photoelectro-catalytic activity of methanol oxidation

机译:碳量子点敏化PT @ Bi2Wo6 / FTO电极,用于增强甲醇氧化的光电催化活性

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摘要

Carbon quantum dot sensitized Pt@Bi2WO6/FTO electrodes (simplified as CQDs-Pt@Bi2WO6/FTO) were successfully prepared by loading platinum particles onto Bi2WO6 nanoplates via a photo-deposition method and sensitized carbon quantum dots (CQDs) via a dip-coating method. The photoelectro-catalytic properties of the Pt@Bi2WO6/FTO and CQDs-Pt@Bi2WO6/FTO electrodes for methanol oxidation were investigated. The results indicated that the CQDs-Pt@Bi2WO6/FTO electrode shows higher photoelectro-catalytic activity and better stability than that of the Pt@Bi2WO6/FTO electrode. The higher photoelectro-catalytic performance for methanol oxidation was attributed due to the special synergetic effects between the photocatalytic and electrocatalytic process under solar light irradiation. More importantly, the introduction of CQDs broaden the photoresponse range of the Bi2WO6 material and improves the mobility of the photocarriers. Meanwhile, the doped CQDs act as preferential adsorption sites for the intermediate carbonaceous species during methanol oxidation. This not only alleviates CO poisoning towards the Pt particles, but also improves the efficiency of methanol oxidation by constructing a new type of CQDs-Pt electrocatalyst. The composite material, which combines the dual function of photocatalysis and electrocatalysis will be a promising candidate for new photoelectro-catalytic fuel cells.
机译:通过光沉积方法将铂颗粒加载到Bi2WO6纳米层上,通过光沉积方法加载到Bi2WO6纳米层上并通过浸涂来成功地制备碳量子点敏化Pt @ Bi2wo6 / FTO电极(简化为CQDS-PT @ Bi2WO6 / FTO)方法。研究了Pt @ Bi2wo6 / FTO和CQDS-PT @ Bi2WO6 / FTO电极的光电催化性能进行了研究的甲醇氧化。结果表明,CQDS-PT @ BI2WO6 / FTO电极显示出较高的光电催化活性和比PT @ BI2WO6 / FTO电极更好的稳定性。由于太阳光照射下的光催化和电催化过程之间的特殊协同效应,甲醇氧化的较高光电催化性能归因于甲醇氧化。更重要的是,CQD的引入拓宽了Bi2WO6材料的光响应范围,并改善了光载体的迁移率。同时,掺杂的CQDS在甲醇氧化过程中作为中间碳质物种的优先吸附位点。这不仅减轻了对Pt颗粒的CO中毒,而且通过构建一种新型的CQDS-PT电催化剂,还提高了甲醇氧化的效率。结合光催化和电催化的双重功能的复合材料将是新的光电催化燃料电池的有希望的候选者。

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  • 来源
    《RSC Advances》 |2017年第43期|共9页
  • 作者单位

    Zhejiang Univ Technol Dept Appl Chem Hangzhou 310032 Zhejiang Peoples R China;

    Zhejiang Univ Technol Dept Appl Chem Hangzhou 310032 Zhejiang Peoples R China;

    Zhejiang Univ Technol Dept Appl Chem Hangzhou 310032 Zhejiang Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
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