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Hydrogen production from formic acid solution by modified TiO_2 and titanate nanotubes in a two-step system under visible light irradiation

机译:在可见光照射下的两步系统中,由改性TiO_2和钛酸酯纳米管从甲酸溶液制氢

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摘要

Hydrogen gas is one of the most promising renewable energy sources, and the final product of hydrogen combustion is nothing but water. However, it is still a big challenge to produce hydrogen and store it. Many studies have been conducted into produce hydrogen from water using photocatalysts. Z-scheme photocatalysis is a two-photocatalyst system that comprises a hydrogen catalyst and an oxygen catalyst to produce hydrogen and oxygen respectively. Compared to the one-step system, the two-step system can promote the efficiency of water splitting. In addition, formic acid (FA) is a convenient hydrogen-storage material and can be safely handled in aqueous solutions. Therefore, this study investigated the photocatalytic conversion of FA solution to hydrogen using visible light with several types of hydrogen catalysts (CdS/titanate nanotubes (TNTs), CdS/TiO_2, Pt/CdS/TNTs) and WO_3 as the oxygen catalyst. The results showed that the yield of hydrogen with CdS/TNTs+WO_3 was much higher than with CdS/TiO_2 + WO_3. Moreover, coating the photocatalysts with metal could further promote the reaction. The optimal platinum loading was 0.01 wt%, and the hydrogen production achieved was 852.5 μmol · h~(-1) with 20 vol% FA solution.
机译:氢气是最有前途的可再生能源之一,氢气燃烧的最终产物就是水。但是,生产和储存氢气仍然是一个很大的挑战。已经进行了许多研究以使用光催化剂从水中产生氢。 Z-方案光催化是一种双光催化剂体系,其包含氢气催化剂和氧气催化剂以分别产生氢气和氧气。与一站式系统相比,两步式系统可以提高分水效率。此外,甲酸(FA)是一种方便的储氢材料,可以在水溶液中安全处理。因此,本研究使用几种类型的氢催化剂(CdS /钛酸盐纳米管(TNTs),CdS / TiO_2,Pt / CdS / TNTs)和WO_3作为氧催化剂,研究了使用可见光将FA溶液光催化转化为氢的方法。结果表明,CdS / TNTs + WO_3的氢气产率远高于CdS / TiO_2 + WO_3。而且,用金属涂覆光催化剂可以进一步促进反应。最佳的铂负载量为0.01 wt%,在20vol%的FA溶液中,制氢量为852.5μmol·h〜(-1)。

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