液体激光烧蚀法制备Zn/ZnO核/壳纳米颗粒

Mustafa Raad Taher, Abbas M. Ali Al-Kifaie
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摘要

在本研究中,采用脉冲激光烧蚀(PLA)法制备了Zn/ZnO纳米粒子(NPs),制备了三种液体(乙醇、丙酮和蒸馏水)。采用波长为1064 nm,能量为800 mJ,频率为6 Hz的Nd-YAG激光器,在室温下合成了100个激光脉冲的Zn/ZnO NPs。将锌金属板分别浸入乙醇、丙酮和蒸馏水中。在乙醇、丙酮和蒸馏水中,锌/氧化锌NPs分别在320、341和333 nm处出现尖峰和单峰。FTIR测试表明,在乙醇、丙酮和蒸馏水中,Zn/ZnO纳米粒子的峰值约为500 cm−1,表明Zn- o拉伸振动。XRD分析表明,在乙醇、丙酮和蒸馏水中,Zn/ZnO纳米粒子的低角峰分别为23.31˚、23.81˚和19.20˚。此外,丙酮中Zn/ZnO核壳NPs在13.54˚时出现了一个高强度尖峰。这些峰表明结构稳定且未变形。这些模式强调紧密的孔隙排列。梯度峰的强度较低表明ZnO在优先位置形成。也没有出现高角度的XRD图,说明形成的ZnO NPs很小,无法与背景噪声区分,或者无法通过窄角XRD检测到。在20°~ 30°2θ角处的XRD宽峰也证实了ZnO的低晶性。TEM图像显示,在乙醇、丙酮和蒸馏水中存在尺寸小于50 nm的Zn/ZnO NPs, TEM分析证实了Zn/ZnO NPs的主要结构为核壳结构。
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Fabrication of Zn/ZnO Core/Shell Nanoparticles by Laser Ablation in Liquid Technique
In this research, Zn/ZnO Nanoparticles (NPs) were prepared via the Pulse Laser Ablation (PLA) method using three liquids (Ethanol, Acetone, and Distilled Water). Zn/ZnO NPs were synthesized via an Nd-YAG laser with a wavelength of 1064 nm, applied energy of 800 mJ, a frequency of 6 Hz, and 100 laser pulses at room temperature. The Zn metal plate was dipped in Ethanol, Acetone, and Distilled Water, respectively. The UV-Vis results shows sharp and single peaks at 320, 341, and 333 nm for Zn/ZnO NPs in Ethanol, Acetone, and Distilled Water respectively. FTIR testing shows peaks at about 500 cm−1 for Zn/ZnO NPs in Ethanol, Acetone, and Distilled Water, which indicates Zn-O stretching vibrations. XRD investigation shows low-angle peaks at 23.31˚, 23.81˚, and 19.20˚ for Zn/ZnO NPs in Ethanol, Acetone, and Distilled Water, respectively. In addition, a sharp peak of high intensity was observed at 13.54˚ for Zn/ZnO Core/Shell NPs in Acetone. These peaks indicate that the structure is stable and undistorted. These patterns emphasize compact pore arrangements. The lower intensity of the gradient peaks indicates that ZnO formed at a preferred site. Nor did high-angle XRD patterns appear, indicating that the formed ZnO NPs are so small to be distinct from background noise or undetectable by widish angle XRD. The broad XRD peak at 2θ angles from 20° to 30° can also confirm that ZnO is low-crystalline. The TEM images show the presence of Zn/ZnO NPs in Ethanol, Acetone, and Distilled Water with a size of less than 50 nm, and TEM analysis confirms that the primary structure of Zn/ZnO NPs is a Core/Shell.  
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