4.5 Article

Experimental and theoretical study to explain the morphology of CaMoO4 crystals

Journal

JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS
Volume 114, Issue -, Pages 141-152

Publisher

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.jpcs.2017.11.019

Keywords

CaMoO4; Microwave-assisted hydrothermal method; Morphology; Wulff construction

Funding

  1. National Council for Scientific and Technological Development - CNPq [402127/2013-7]
  2. Sao Paulo Research Foundation - FAPESP [2013/07296-2]
  3. Programa de Pos-Graduagao em Ciencia e Engenharia de Materials (PPGCEM-UFRN), Generalitat Valenciana [PrometeoII/2014/022, ACOMP/2014/270, ACOMP/2015/1202]
  4. Ministerio de Economia y Competitividad, Spain [CTQ2015-65207-P]
  5. Programa de Cooperation Cientifica con Iberoamerica (Brazil) of the Ministerio de Education, Spain [PHBP14-00020]
  6. Ministerio de Economia y Competitividad, Salvador Madariaga program [PRX15/00261]
  7. Generalitat Valencia for the Santiago Grisolia program [2015/033]

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CaMoO4 crystals were prepared by a controlled co-precipitation method and processed in a domestic microwave assisted hydrothermal system with two different surfactants (ethyl 4-dimethylaminobenzoate and 1,2,4,5-benzenetetracarboxylic dianhydride). The corresponding structures were characterized by X-ray diffraction and Rietveld refinement techniques, Fourier transform infrared spectroscopy, ultraviolet visible absorption spectroscopy, and photoluminescence measurements. Field emission scanning electron microscopy was used to investigate the morphology of the as-synthesized aggregates. The structure, the surface stability of the (001), (112), (100), (110), (101), and (111) surfaces of CaMoO4, and their morphological transformations were investigated through systematic first-principles calculations within the density functional theory method at the B3LYP level. Analysis of the surface structures showed that the electronic properties were associated with the presence of undercoordinated[CaO]x (x = 5 and 6) and [MoOy] (y = 4 and 3) clusters. The relative surfaces energies were tuned to predict a complete map of the morphologies available through a Wulff construction approach. The results reveal that the experimental and theoretical morphologies obtained coincide when the surface energies of the (001) and (101) surfaces increase, while the surface energy of the (100) facet decreases simultaneously. The results provide a comprehensive catalog of the morphologies most likely to be present under realistic conditions, and will serve as a starting point for future studies on the surface chemistry of CaMoO4] crystals.

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