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首页> 外文期刊>Advanced Sustainable Systems >Bandgap Engineering in Novel Fluorite‐Type Rare Earth High‐Entropy Oxides (RE‐HEOs) with Computational and Experimental Validation for Photocatalytic Water Splitting Applications
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Bandgap Engineering in Novel Fluorite‐Type Rare Earth High‐Entropy Oxides (RE‐HEOs) with Computational and Experimental Validation for Photocatalytic Water Splitting Applications

机译:能带工程在小说萤石型少见地球高熵氧化物(RE heo应承担的)计算和实验验证光催化水分解应用程序

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Abstract Five different rare‐earth‐based nanocrystalline high entropy oxides (HEOs) with fluorite structure and average crystallite sizes between 6 and 8 nm are prepared and their photocatalytic behavior toward azo dye degradation and photoelectrochemical water splitting for hydrogen generation is examined. The cationic site in the fluorite lattice consists of five equimolar elements selected from the group of rare‐earth elements including La, Ce, Pr, Eu, and Gd and second‐row transition metals, Y and Zr. The studied HEOs exhibit bandgaps in the range from 1.91 to 3.0 eV and appropriate valence and conduction bands for water splitting. They reveal high photocatalytic activity that is mostly attributed to the accessibility of more photocatalytic active sites, which provide radicals responsible for the azo dye degradation. The materials successfully produce hydrogen by photocatalytic water splitting, suggesting the potential of HEOs as new photocatalysts. The photocatalytic performances of all studied HEOs outperform the single fluorite oxides or equivalent mixed oxides. The Ce0.2Zr0.2La0.2Pr0.2Y0.2O2 (CZLPY) engender hydrogen in 9.2 µmol mg−1 per hour that is much higher content than for pristine CeO2 material which amounts to 0.8 µmol mg−1 per hour.
机译:抽象的五个不同的地球罕见量的基础纳米晶体高熵氧化物(heo)萤石结构和平均微晶尺寸6和8海里准备和他们之间的关系偶氮染料光催化行为退化和光电化学水检查分离氢代。萤石的阳离子网站晶格选自包括五个克分子数相等的元素地球地理群稀有元素包括洛杉矶,这第二、Pr、曾与Gd‐街转型金属、Y、锆。带隙范围从1.91到3.0 eV合适的价带和导带水分裂。活动主要是归因于可访问性更多的光催化活性负责网站,提供自由基偶氮染料降解。生产氢的光催化水分裂,表明heo的潜力新的催化剂。表演的研究heo超越单一萤石氧化物或等价的混合氧化物。产生氢在每小时9.2µ摩尔mg−1比原始CeO2更高的内容吗材料,相当于每小时0.8µ摩尔mg−1。

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