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An in-situ photoelectron spectroscopy study of the thermal processing of ammonium tetrathiomolybdate, (NH_4)_2MoS_4) precursor

机译:四硫代钼酸铵(NH_4)_2MoS_4)前驱体热处理的原位光电子能谱研究

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摘要

Nano scale molybdenum disulfide (MoS2) is a very promising material for the next generation electronics and energy storage devices. The active defect sites located at the periphery of the lattice may influence certain redox reactions, thus classifying it as an excellent non-noble metal catalyst. One effective approach to synthesize large scale MoS2 films is through simple thermolysis of (NH4)(2)MoS4 precursor. Herein, a combined in situ X-ray and Ultra-Violet photoelectron spectroscopies (XPS/UPS) study has been carried out to follow the evolution of atomic composition, the surface chemical species and the electronic properties (Work Function and Ionization Potential) during the thermal decomposition of (NH4)(2)MoS4 salt in Ultra High Vacuum conditions. It was found that, up to 400C, thermal conversion of (NH4)(2)MoS4 salt to transient intermediates, across amorphous MoSx phase have been performed towards to MoS2 out of significant percent of suphur active sites. The active sites have been decreased upon heating at higher temperatures. Assignment of the thermally evolved active species at defect sites and the correlation of surface atomic concentration combined with either the Ionization Potential or the Work Function of annealed MoSx nanoflakes makes this study a knowledgeable factor of awareness through electrocatalytic properties of MoS2-based nanostructures.
机译:纳米级二硫化钼(MoS2)是用于下一代电子设备和能量存储设备的非常有前途的材料。位于晶格外围的活性缺陷位点可能会影响某些氧化还原反应,因此将其分类为出色的非贵金属催化剂。合成大规模MoS2薄膜的一种有效方法是通过(NH4)(2)MoS4前体的简单热解。在这里,结合原位X射线和紫外光电子能谱(XPS / UPS)进行了研究,以跟踪原子组成,表面化学种类和电子特性(功函数和电离势)的演变。 (NH4)(2)MoS4盐在超高真空条件下的热分解。已经发现,在高达400℃的温度下,已经通过无定形MoSx相将(NH4)(2)MoS4盐热转化为瞬态中间体,从而从显着百分比的超活性位点向MoS2转化。在较高温度下加热时,活性部位已减少。缺陷部位的热演化活性物种的分配以及表面原子浓度与电离势或退火的MoSx纳米薄片的功函的相关性,使该研究成为基于MoS2纳米结构的电催化特性的认识的知识因素。

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