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新型硼热法合成铌的纳米晶氧化物和硼化物。

Novel borothermal process for the synthesis of nanocrystalline oxides and borides of niobium.

机构信息

Department of Chemistry, Indian Institute of Technology, Hauz Khas, New Delhi, 110016, India.

出版信息

Dalton Trans. 2011 Aug 21;40(31):7879-88. doi: 10.1039/c1dt10468c. Epub 2011 Jul 8.

DOI:10.1039/c1dt10468c
PMID:21743887
Abstract

A new process has been developed for the synthesis of nanocrystalline niobium oxide and niobium diboride using an amorphous niobium precursor obtained via the solvothermal route. On varying the ratio of niobium precursor to boron and the reaction conditions, pure phases of nanostructured niobium oxides (Nb(2)O(5), NbO(2)), niobium diboride (NbB(2)) and core-shell nanostructures of NbB(2)@Nb(2)O(5) could be obtained at normal pressure and low temperature of 1300 °C compared to a temperature of 1650 °C normally used. The above borothermal process involves the in situ generation of B(2)O(2) to yield either oxide or diboride. The niobium oxides and borides have been characterized in detail by XRD, HRTEM and EDX studies. The core-shell structure has been investigated by XPS depth profiling, EFTEM and EELS (especially to characterize the presence of boron and the shell thickness). The niobium diboride nanorods (with high aspect ratio) show a superconducting transition with the T(c) of 6.4 K. In the core-shell of NbB(2)@Nb(2)O(5), the superconductivity of NbB(2) is masked by the niobium oxide shell and hence no superconductivity was observed. The above methodology has the benefits of realizing both oxides and borides of niobium in nanocrystalline form, in high purity and at much lower temperatures.

摘要

一种使用通过溶剂热路线获得的无定形铌前体制备纳米晶氧化铌和二硼化铌的新方法已经开发出来。通过改变铌前体与硼的比例和反应条件,可以在常压和 1300°C 的低温下获得纯相纳米结构氧化铌(Nb(2)O(5)、NbO(2))、二硼化铌(NbB(2))和 NbB(2)@Nb(2)O(5)核壳纳米结构,而通常使用的温度为 1650°C。上述硼热过程涉及原位生成 B(2)O(2),以生成氧化物或二硼化物。通过 XRD、HRTEM 和 EDX 研究对氧化铌和硼化物进行了详细表征。通过 XPS 深度剖析、EFTEM 和 EELS(特别是为了表征硼的存在和壳层厚度)研究了核壳结构。具有高纵横比的二硼化铌纳米棒表现出超导转变,Tc 为 6.4K。在 NbB(2)@Nb(2)O(5)的核壳中,NbB(2)的超导性被氧化铌壳层掩盖,因此没有观察到超导性。上述方法的优点是可以在纳米晶形式、高纯度和低得多的温度下实现铌的氧化物和硼化物。

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