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In Situ Construction of CNT/CuS Hybrids and Their Application in Photodegradation for Removing Organic Dyes

机译:CNT / CuS杂化体的原位构建及其在光降解中去除有机染料的应用

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摘要

Herein, a coprecipitation method used to synthesize CuS nanostructures is reported. By varying the reaction time and temperature, the evolution of the CuS morphology between nanoparticles and nanoflakes was investigated. It was found that CuS easily crystallizes into sphere-/ellipsoid-like nanoparticles within a short reaction time (0.5 h) or at a high reaction temperature (120 °C), whereas CuS nanoflakes are readily formed at a low reaction temperature (20 °C) for a long time (12 h). Photodegradation experiments demonstrate that CuS nanoflakes exhibit a higher photodegradation performance than CuS nanoparticles for removing rhodamine B (RhB) from aqueous solution under simulated sunlight irradiation. Carbon nanotubes (CNTs) were further used to modify the photodegradation performance of a CuS photocatalyst. To achieve this aim, CNTs and CuS were integrated to form CNT/CuS hybrid composites via an in situ coprecipitation method. In the in situ constructed CNT/CuS composites, CuS is preferably formed as nanoparticles, but cannot be crystallized into nanoflakes. Compared to bare CuS, the CNT/CuS composites manifest an obviously enhanced photodegradation of RhB; notably, the 3% CNT/CuS composite with CNT content of 3% showed the highest photodegradation performance ( = 89.4% for 120 min reaction, = 0.01782 min ). To make a comparison, CuS nanoflakes and CNTs were mechanically mixed in absolute alcohol and then dried to obtain the 3% CNT/CuS-MD composite. It was observed that the 3% CNT/CuS-MD composite exhibited a slightly higher photodegradation performance ( = 92.4%, = 0.0208 min ) than the 3% CNT/CuS composite, which may be attributed to the fact that CuS maintains the morphology of nanoflakes in the 3% CNT/CuS-MD composite. The underlying enhanced photocatalytic mechanism of the CNT/CuS composites was systematically investigated and discussed.
机译:在此,报道了用于合成CuS纳米结构的共沉淀方法。通过改变反应时间和温度,研究了纳米颗粒和纳米薄片之间CuS形态的演变。发现CuS在短反应时间(0.5 h)或高反应温度(120°C)内容易结晶成球形/椭球状纳米颗粒,而CuS纳米薄片在低反应温度(20°C)下容易形成C)长时间(12小时)。光降解实验表明,在模拟日光照射下,CuS纳米薄片比CuS纳米颗粒具有更高的光降解性能,可从水溶液中去除若丹明B(RhB)。碳纳米管(CNT)进一步用于改变CuS光催化剂的光降解性能。为了实现这一目标,通过原位共沉淀法将CNTs和CuS集成在一起以形成CNT / CuS杂化复合材料。在原位构造的CNT / CuS复合物中,CuS优选形成为纳米颗粒,但是不能结晶成纳米薄片。与裸露的CuS相比,CNT / CuS复合材料表现出RhB的明显的光降解。值得注意的是,CNT含量为3%的3%CNT / CuS复合材料表现出最高的光降解性能(120分钟反应= 89.4%,= 0.01782分钟)。为了进行比较,将CuS纳米片和CNT在无水酒精中机械混合,然后干燥,以获得3%CNT / CuS-MD复合材料。观察到,3%CNT / CuS-MD复合材料表现出比3%CNT / CuS复合材料稍高的光降解性能(= 92.4%,= 0.0208 min),这可能归因于CuS保持了C / S的形态。 3%CNT / CuS-MD复合材料中的纳米薄片。系统地研究和讨论了CNT / CuS复合材料潜在的增强光催化机理。

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