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首页> 外文期刊>Nanoscience and Nanotechnology - Asia >Prominent Visible Light Photocatalytic and Water Purification Activity of PbS/CdS/CdO Nanocomposite Synthesized via Simple Co-precipitation Method
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Prominent Visible Light Photocatalytic and Water Purification Activity of PbS/CdS/CdO Nanocomposite Synthesized via Simple Co-precipitation Method

机译:通过简单共沉淀法合成PBS / Cds / CdO纳米复合物的突出可见光光催化和水净化活性

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Background: Due to unique chemical and physical properties and potential application in many fields, nanostructured materials have attracted many attentions. Cadmium sulfide (CdS) is a semiconductor that has a wide band gap of 2.42 eV at room temperature and can be served in solar cells and photoluminescence devices. Cadmium sulfide (CdS) is a kind of attractive semiconductor material, and it is now widely used for optoelectronic applications. CdS nano and microstructures can be synthesized via different chemical methods such as microwave-solvothermal synthesis, surfactant-ligand co-assisting solvothermal method and hydrothermal route. Also different morphologies of this semiconductor such as dendrites, nanorods, sphere-like, flakes, nanowires, flower-like shape triangular and hexagonal plates, were synthesized. Methods: To synthesis of the nanocomposite, a simple co-precipitation method was served. In briefly, 0.1 g of Pb(NO_3)_2 was dissolved in the distilled water (Solution 1). Also different aqueous solutions were made from dissolving different mole ratio of Cd(NO_3)_2·6H_2O respect to the lead source in the water (Solution 2). Two solutions were mixed together under vigorous stirring and then S~(2-) solution (0.02 g thiourea in the water) was added to the Pb~(2+)/Cd~(2+) solution. After that 0.1 g of CTAB as surfactant was added to the final solution. Finally to the synthesis of both sulfide and oxide nanostructures, NaOH solution was added to the prepared solution to obtain pH=10. Distilled water and absolute ethanol were used to wash the obtained precipitate and then it dried at 80°C for 8 h. Results: From the XRD pattern it was found that the peaks placed at 24.9°, 27°, 44.1°, 48°, 52°, 54°, 57.8°, 66.8°, 71.2° are associated to CdS compound with hexagonal phase (JCPDS=00-001-0780) that belong to (100), (002), (110), (103), (112), (201), (202), (203), (211) Miller indices respectively. The Other peaks belong to PbS with hexagonal phase (JCPDS=01-078-1897), and CdO with cubic phase (JCPDS=00-001-1049). From SEM images, it was found by choosing the mole ratio to 1:1, very small and uniform particles were achieved. By increasing Pb~(2+)/Cd~(2+) mole ratio to 1:2, very tiny particles aggregated together were achieved. Conclusion: The results showed that the product can adsorb extra 80% of heavy metal ions from the water. So it can be said that the nanocomposite can be used in the water treatment due to its high photocatalytic and surface adsorption activities. In other words, it can remove heavy metals from the water and also decompose organic pollutions.
机译:背景:由于许多田地的独特化学和物理性质和潜在应用,纳米结构材料吸引了许多关注。硫化镉(Cds)是半导体,在室温下具有2.42eV的宽带隙,可用于太阳能电池和光致发光器件。硫化镉(CD)是一种有吸引力的半导体材料,现在广泛用于光电应用。 Cds纳米和微观结构可以通过不同的化学方法合成,例如微波 - 溶剂合成,表面活性剂 - 配体协助溶剂热法和水热途径​​。还合成了该半导体的不同形态,例如树突,纳米棒,球形,薄片,纳米线,花状形状三角形和六边形板。方法:对纳米复合材料合成,配送了简单的共沉淀法。简而言之,将0.1g Pb(NO_3)_2溶解在蒸馏水中(溶液1)。还由不同的水溶液溶解在水中的CD(NO_3)_2·6H_2O的不同摩尔比(NO_3)_2·6H_2O的铅(溶液2)中的引线源。将两种溶液在剧烈搅拌下混合在一起,然后将S〜(2-)溶液(水中0.02g硫脲)加入到Pb〜(2 +)/ Cd〜(2+)溶液中。之后将0.1g CTAB作为表面活性剂加入到最终溶液中。最后为了合成硫化物和氧化物纳米结构,将NaOH溶液加入制备的溶液中以获得pH = 10。蒸馏水和绝对乙醇用于洗涤所得沉淀物,然后在80℃下干燥8小时。结果:从XRD图案中发现,达到24.9°,27°,44.1°,48°,52°,54°,57.8°,66.8°,71.2°的峰与具有六边形相的CDS化合物(JCPDS = 00-001-0780)分别属于(100),(002),(110),(103),(112),(201),(202),(203),(211)米勒索引。另一个峰属于具有六边形相的PBS(JCPDS = 01-078-18-1897),以及具有立方相的CDO(JCPDS = 00-001-1049)。从SEM图像中,通过选择摩尔比至1:1来发现,实现非常小和均匀的颗粒。通过将Pb〜(2 +)/ Cd〜(2+)摩尔比增加到1:2,实现了非常微小的颗粒聚集在一起。结论:结果表明,该产品可吸附来自水的额外80%的重金属离子。因此,可以说,由于其高光催化和表面吸附活性,纳米复合材料可用于水处理。换句话说,它可以从水中除去重金属并分解有机污染。

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