首页> 外文期刊>Journal of nanoscience and nanotechnology >Development of CdS Nanostructures by Thermal Decomposition of Aminocaproic Acid-Mixed Cd-Thiourea Complex Precursor: Structural, Optical and Photocatalytic Characterization
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Development of CdS Nanostructures by Thermal Decomposition of Aminocaproic Acid-Mixed Cd-Thiourea Complex Precursor: Structural, Optical and Photocatalytic Characterization

机译:氨基己酸-混合的Cd-硫脲复合物前体的热分解反应制备CdS纳米结构:结构,光学和光催化特性

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The present work deals with two different CdS nanostructures produced via hydrothermal and solvothermal decompositions of aminocaproic acid (ACA)-mixed Cd-thiourea complex precursor at 175 degrees C. Both nanostructures were extensively characterized for their structural, morphological and optical properties. The powder X-ray diffraction characterization showed that the two CdS nanostructures present a wurtzite morphology. Scanning electron microscopy and energy-dispersive X-ray characterizations revealed that the hydrothermal decomposition produced well-shaped CdS flowers composed of six dendritic petals, and the solvothermal decomposition produced CdS microspheres with close stoichiometric chemical composition. The UV-vis absorption and photoluminescence spectra of CdS dendritic flowers and microsphere nanostructures showed that both nanostructures present a broad absorption between 200 and 700 nm and exhibit strong green emissions at 576 and 520 nm upon excitations at 290 nm and 260 nm, respectively. The transmission electron microscopy (TEM) and Brunauer-Emmett-Teller (BET) characterizations confirmed that CdS microspheres were mesoporous and were composed of small nanocrystals. A possible growth mechanism in the formation of the CdS nanostructures was proposed based on morphology evolution as a function of the reaction time. Furthermore, the as-synthesized CdS nanostructures were found to exhibit highly efficient photocatalytic activities for the degradation of methyl orange (MeO) and rhodamine B (RhB) dyes.
机译:本工作涉及两种不同的CdS纳米结构,它们是通过在175摄氏度下将氨基己酸(ACA)混合的Cd-硫脲复合物前体进行水热和溶剂热分解而制得的。两种纳米结构的结构,形态和光学性质均得到了广泛表征。粉末X射线衍射表征表明,两个CdS纳米结构呈现纤锌矿形态。扫描电子显微镜和能量色散X射线表征表明,水热分解产生了由六个树枝状花瓣组成的形状良好的CdS花,而溶剂热分解产生了化学计量接近的CdS微球。 CdS树状花和微球纳米结构的紫外可见吸收光谱和光致发光光谱表明,两种纳米结构在200和700 nm之间均具有较宽的吸收率,并分别在290 nm和260 nm处激发时在576和520 nm处显示出强绿色发射。透射电子显微镜(TEM)和Brunauer-Emmett-Teller(BET)的特征证实CdS微球是介孔的,由小的纳米晶体组成。基于形态演化作为反应时间的函数,提出了在CdS纳米结构形成中可能的生长机理。此外,发现合成后的CdS纳米结构对甲基橙(MeO)和若丹明B(RhB)染料的降解显示出高效的光催化活性。

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