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富勒烯状(IF)Nb(x)Mo(1-x)S2纳米颗粒。

Fullerene-like (IF) Nb(x)Mo(1-x)S2 nanoparticles.

作者信息

Deepak Francis Leonard, Cohen Hagai, Cohen Sidney, Feldman Yishay, Popovitz-Biro Ronit, Azulay Doron, Millo Oded, Tenne Reshef

机构信息

Department of Materials and Interfaces, Chemical Services Unit, Electron Microscopy Unit, Weizmann Institute of Science, Rehovot 76100, Israel.

出版信息

J Am Chem Soc. 2007 Oct 17;129(41):12549-62. doi: 10.1021/ja074081b. Epub 2007 Sep 21.

Abstract

IF-Mo1-xNbxS2 nanoparticles have been synthesized by a vapor-phase reaction involving the respective metal halides with H2S. The IF-Mo1-xNbxS2 nanoparticles, containing up to 25% Nb, were characterized by a variety of experimental techniques. Analysis of the powder X-ray powder diffraction, X-ray photoelectron spectroscopy, and different electron microscopy techniques shows that the majority of the Nb atoms are organized as nanosheets of NbS2 within the MoS2 host lattice. Most of the remaining Nb atoms (3%) are interspersed individually and randomly in the MoS2 host lattice. Very few Nb atoms, if any, are intercalated between the MoS2 layers. A sub-nanometer film of niobium oxide seems to encoat the majority of the nanoparticles. X-ray photoelectron spectroscopy in the chemically resolved electrical measurement mode (CREM) and scanning probe microscopy measurements of individual nanoparticles show that the mixed IF nanoparticles are metallic independent of the substitution pattern of the Nb atoms in the lattice of MoS2 (whereas unsubstituted IF-MoS2 nanoparticles are semiconducting). Furthermore the IF-Mo1-xNbxS2 nanoparticles are found to exhibit interesting single electron tunneling effects at low temperatures.

摘要

通过涉及相应金属卤化物与硫化氢的气相反应合成了IF-Mo1-xNbxS2纳米颗粒。对含有高达25%铌的IF-Mo1-xNbxS2纳米颗粒采用了多种实验技术进行表征。粉末X射线粉末衍射、X射线光电子能谱以及不同的电子显微镜技术分析表明,大多数铌原子在MoS2主体晶格中以NbS2纳米片的形式排列。其余大部分铌原子(3%)单独且随机地散布在MoS2主体晶格中。极少有铌原子(如果有的话)插层在MoS2层之间。一层氧化铌亚纳米膜似乎包覆了大多数纳米颗粒。化学分辨电测量模式(CREM)下的X射线光电子能谱以及对单个纳米颗粒的扫描探针显微镜测量表明,混合的IF纳米颗粒是金属性的,与MoS2晶格中铌原子的取代模式无关(而未取代的IF-MoS2纳米颗粒是半导体)。此外,发现IF-Mo1-xNbxS2纳米颗粒在低温下表现出有趣的单电子隧穿效应。

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