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消除二维和三维钼酸镍水合物结构中的差异

Clearing Up Discrepancies in 2D and 3D Nickel Molybdate Hydrate Structures.

作者信息

Dürr Robin N, Maltoni Pierfrancesco, Feng Shihui, Ghorai Sagar, Ström Petter, Tai Cheuk-Wai, Araujo Rafael B, Edvinsson Tomas

机构信息

Department of Chemistry, Physical Chemistry, Ångström Laboratory, Uppsala University, Uppsala 751 20 ,Sweden.

Université Paris-Saclay, CEA, CNRS, NIMBE, LICSEN, Gif-sur-Yvette91191 ,France.

出版信息

Inorg Chem. 2024 Feb 5;63(5):2388-2400. doi: 10.1021/acs.inorgchem.3c03261. Epub 2024 Jan 19.

Abstract

When electrocatalysts are prepared, modification of the morphology is a common strategy to enhance their electrocatalytic performance. In this work, we have examined and characterized nanorods (3D) and nanosheets (2D) of nickel molybdate hydrates, which previously have been treated as the same material with just a variation in morphology. We thoroughly investigated the materials and report that they contain fundamentally different compounds with different crystal structures, chemical compositions, and chemical stabilities. The 3D nanorod structure exhibits the chemical formula NiMoO·0.6HO and crystallizes in a triclinic system, whereas the 2D nanosheet structures can be rationalized with NiMoO(OH)·(2.3 - 0.5)HO, with a mixed valence of both Ni and Mo, which enables a layered crystal structure. The difference in structure and composition is supported by X-ray photoelectron spectroscopy, ion beam analysis, thermogravimetric analysis, X-ray diffraction, electron diffraction, infrared spectroscopy, Raman spectroscopy, and magnetic measurements. The previously proposed crystal structure for the nickel molybdate hydrate nanorods from the literature needs to be reconsidered and is here refined by ab initio molecular dynamics on a quantum mechanical level using density functional theory calculations to reproduce the experimental findings. Because the material is frequently studied as an electrocatalyst or catalyst precursor and both structures can appear in the same synthesis, a clear distinction between the two compounds is necessary to assess the underlying structure-to-function relationship and targeted electrocatalytic properties.

摘要

在制备电催化剂时,改变其形态是提高电催化性能的常用策略。在本工作中,我们对钼酸镍水合物的纳米棒(三维)和纳米片(二维)进行了研究和表征,此前它们被视为仅形态不同的同一种材料。我们对这些材料进行了深入研究,并报告它们包含具有不同晶体结构、化学成分和化学稳定性的根本不同的化合物。三维纳米棒结构的化学式为NiMoO·0.6H₂O,结晶于三斜晶系,而二维纳米片结构可表示为NiMoO(OH)·(2.3 - 0.5)H₂O,其中Ni和Mo均具有混合价态,这使得其具有层状晶体结构。结构和组成上的差异得到了X射线光电子能谱、离子束分析、热重分析、X射线衍射、电子衍射、红外光谱、拉曼光谱和磁性测量的支持。文献中先前提出的钼酸镍水合物纳米棒的晶体结构需要重新考虑,在此我们通过使用密度泛函理论计算在量子力学水平上进行从头算分子动力学来对其进行优化,以重现实验结果。由于该材料常被作为电催化剂或催化剂前驱体进行研究,且两种结构可能出现在同一合成过程中,因此有必要明确区分这两种化合物,以评估潜在的结构 - 功能关系和目标电催化性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0ca9/10848204/602c3c09c2ec/ic3c03261_0001.jpg

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