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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Controllable design of double metal oxide (NiCo2O4)-modified CdS for efficient photocatalytic hydrogen production
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Controllable design of double metal oxide (NiCo2O4)-modified CdS for efficient photocatalytic hydrogen production

机译:双金属氧化物(NiCO2O4)的可控设计 - 用于高效光催化氢气的CDS

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In the present study, we have successfully synthesized a kind of high-efficiency NiCo2O4/CdS composite photocatalyst using the hydrothermal method and high-temperature calcination. With the addition of NiCo2O4, hydrogen evolution has been significantly improved by successfully adjusting the electron transport routes. For the composite catalyst, the maximum amount of hydrogen evolution under visible light irradiation for 5 hours reached 549 mol. Through this phenomenon, the hydrogen production rate of the corresponding composite catalysts reached 10980 mol g(-1) h(-1). The hydrogen production rate of the composite catalysts is 5.1 times that of pure CdS under the same conditions. In addition, there was no significant decrease in the photocatalytic activity of the composite catalyst even after 5 cycles of photocatalytic hydrogen production. These phenomena indicate that the introduction of NiCo2O4 inhibits the photo-corrosion of CdS itself and enhances hydrogen production activity while ensuring the stability of the catalyst. In order to characterize the physical properties of the NiCo2O4/CdS composite catalyst, we used XRD, SEM, TEM, XPS, BET and UV-vis techniques. In photoelectron and hole transport mechanisms, we have studied the catalysts by photoluminescence spectroscopy, transient photocurrent and photoelectrochemical experiments. The introduction of NiCo2O4 increases the active site of the composite catalyst, which facilitates the separation of photogenerated electrons and holes and accelerates the transfer of electrons.
机译:在本研究中,我们已经成功地使用水热法和高温煅烧成功地合成了一种高效Nico2O4 / Cds复合光催化剂。随着Nico2O4的添加,通过成功调节电子传输路线,已经显着改善了氢化进化。对于复合催化剂,可见光照射下的最大氢化量5小时达到549摩尔。通过这种现象,相应的复合催化剂的氢气产生率达到10980molg(-1)H(-1)。在相同条件下,复合催化剂的氢生产率为纯Cds的5.1倍。此外,即使在5次光催化氢气产生后,复合催化剂的光催化活性也没有显着降低。这些现象表明,NicO2O4的引入抑制CDS本身的光腐蚀,并增强了氢气产生活性,同时确保催化剂的稳定性。为了表征NiCO2O4 / CDS复合催化剂的物理性质,我们使用了XRD,SEM,TEM,XPS,BET和UV-VIS技术。在光电子和空穴传输机构中,我们通过光致发光光谱,瞬时光电流和光电化学实验研究了催化剂。 NicO2O4的引入增加了复合催化剂的活性位点,这有利于光生电子和孔的分离,并加速电子的转移。

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    North Minzu Univ Sch Chem &

    Chem Engn Yinchuan 750021 Peoples R China;

    North Minzu Univ Sch Chem &

    Chem Engn Yinchuan 750021 Peoples R China;

    North Minzu Univ Sch Chem &

    Chem Engn Yinchuan 750021 Peoples R China;

    North Minzu Univ Sch Chem &

    Chem Engn Yinchuan 750021 Peoples R China;

    North Minzu Univ Sch Chem &

    Chem Engn Yinchuan 750021 Peoples R China;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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