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基于针铁矿模板构建的层级状草履虫样中空/实心 Au/Pt 双金属纳米结构。

Hierarchical paramecium-like hollow and solid Au/Pt bimetallic nanostructures constructed using goethite as template.

机构信息

Laboratory of Applied Environmental Chemistry, University of Eastern Finland, Mikkeli, Finland.

出版信息

Nanotechnology. 2010 Oct 1;21(39):395604. doi: 10.1088/0957-4484/21/39/395604. Epub 2010 Sep 6.

Abstract

Novel hollow and solid paramecium-like hierarchical Au/Pt bimetallic nanostructures were constructed using goethite as template via a seed-mediated growth method. Transmission electron microscopy (TEM), xi-potential measurement, UV-vis spectroscopy, energy dispersive x-ray spectroscopy (EDS), ICP-AES measurement, x-ray powder diffraction (XRD) and x-ray photoelectron spectroscopy (XPS) were utilized to systematically characterize the bimetallic nanostructures. It is found that the core structure of the paramecium-like bimetallic nanomaterial is closely related to reducing agent. When ascorbic acid is used as reducing agent, goethite serves as in situ sacrificed template and hollow paramecium-like bimetallic structure is obtained. When NH(2)OH.HCl is used, solid nanostructure with preserved goethite core is produced. Heating the reaction solution is necessary to obtain the paramecium-like morphology with rough interconnected Pt cilia shell. The thickness of Pt cilia layer can be controlled by adjusting the molar ratio of H(2)PtCl(6) to Au nanoseeds. The overgrowth of the rough Pt cilia is proposed to be via an autocatalytic and three-dimensional heterogeneous nucleation process first through flower-like morphology. Both the hollow and solid hierarchical paramecium-like Au/Pt bimetallic nanostructures show good catalytic activities.

摘要

采用草酸亚铁作为模板,通过种子介导生长法,构建了新颖的中空和实心草履虫状分级 Au/Pt 双金属纳米结构。利用透射电子显微镜(TEM)、X 射线光电子能谱(XPS)、X 射线粉末衍射(XRD)、能谱分析(EDS)、电感耦合等离子体原子发射光谱(ICP-AES)和紫外-可见分光光度法(UV-vis)对双金属纳米结构进行了系统的表征。结果表明,草履虫状双金属纳米材料的核心结构与还原剂密切相关。当使用抗坏血酸作为还原剂时,草酸亚铁作为原位牺牲模板,得到中空的草履虫状双金属结构。当使用 NH(2)OH.HCl 时,则生成保留了草酸亚铁核的实心纳米结构。加热反应溶液对于获得具有粗糙互联 Pt 纤毛壳的草履虫状形貌是必要的。通过调节 H(2)PtCl(6)与 Au 纳米种子的摩尔比,可以控制 Pt 纤毛层的厚度。粗糙 Pt 纤毛的生长被提出是通过自催化和三维异质成核过程首先通过花状形态进行的。中空和实心分级草履虫状 Au/Pt 双金属纳米结构均表现出良好的催化活性。

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