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首页> 外文期刊>Inorganic Chemistry Frontiers >Hollow core/shell beta-Bi2O3@WS2 p-n heterojunction for efficient photocatalytic degradation of fluoroquinolones: a theoretical and experimental study
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Hollow core/shell beta-Bi2O3@WS2 p-n heterojunction for efficient photocatalytic degradation of fluoroquinolones: a theoretical and experimental study

机译:空心核心/壳BIA-BI2O3 @ WS2 P-N异质结以有效的光催化降解氟喹诺酮类:一种理论和实验研究

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In this work, theoretical calculations were firstly carried out for the rational design of a heterojunction photocatalyst. As predicted, the photogenerated electron of WS2 transfers to the conduction band of beta-Bi2O3, while the photogenerated hole of beta-Bi2O3 transfers to the valence band of WS2, thus efficiently separating the photogenerated electron-hole pair. Solid structural characterization proved that WS2 nanosheets were well loaded on the surface of beta-Bi2O3 hollow spheres. The formation of a heterojunction significantly improves both the intensity and range of visible-light harvesting, along with the charge separation ability of the photogenerated carriers, as confirmed by UV-vis diffuse reflectance spectroscopy, photoluminescence spectroscopy, photocurrent density measurements and electrochemical impedance spectroscopy. Moreover, the photocatalytic degradation of fluoroquinolones (FQs) (ofloxacin (OFL), ciprofloxacin (CIP), and norfloxacin (NOR)) by the obtained photocatalyst was measured under visible-light irradiation. The 8 wt% WS2-coated beta-Bi2O3 photocatalyst exhibited superior removal rates for OFL, CIP and NOR, which were 2.32, 2.01 and 1.71 times greater than those of beta-Bi2O3 under the same conditions, respectively. The enhanced photocatalytic performance was attributed to the synergistic effect derived from the p-n junction structure and the core/shell morphology, which enhance the visible-light harvesting capacity, accelerate the separation and transfer of photogenerated charge carriers, and enlarge the specific surface area. The removal efficiency was optimized by modifying a series of parameters including contaminant concentration, photocatalyst dosage, and additive species. In general, this work presents a facile approach for the rational design of p-n core/shell heterojunction photocatalysts, with potential applications in environmental remediation.
机译:在这项工作中,首先进行理论计算,用于异质结光催化剂的合理设计。如预测的那样,WS2的光发射电子转移到β-Bi2O3的导电带,而β-Bi2O3的光致孔转移到WS2的价带,从而有效地分离光发性的电子 - 空穴对。固体结构表征证明,WS2纳米片良好地装载在β-Bi2O3中空球的表面上。异质结的形成显着改善了可见光收获的强度和范围,以及光生载体的电荷分离能力,如通过UV-Vis弥射反射光谱,光致发光光谱,光电流密度测量和电化学阻抗光谱的证实。此外,在可见光照射下,通过所得光催化剂测量所得光催化剂的氟喹啉酮(FQS)(OFLOXACIN)(OFLOXACIN(OFL),环丙沙星(CIP)和NORFLOXACIN(NOR))的光催化降解。 8wt%WS2涂覆的β-Bi2O3光催化剂分别表现出对同一条件下的2.32,2.01和2.32,2.01和1.71倍的优异的除去速率。增强的光催化性能归因于来自P-N结结构和核心/壳形态的协同效应,其增强了可见光收集容量,加速了光生电载体的分离和转移,并扩大了比表面积。通过修饰包括污染物浓度,光催化剂剂量和添加物种的一系列参数来优化去除效率。通常,这项工作介绍了P-N核心/壳杂交光催化剂的合理设计的容易方法,具有环境修复的潜在应用。

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