一种新的合成氧氯化碲(ZrTe2O6Cl):结构评估、光谱(傅立叶变换红外光谱、拉曼光谱、紫外可见光谱)特性和热(TGA/DSC)行为

IF 4 2区 化学 Q2 CHEMISTRY, PHYSICAL
Ivaylo Tankov , Rumyana Yankova , Georgi Rusev , Svetlana Genieva
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A new synthetic tellurium oxychloride (ZrTe2O6Cl): structural evaluation, spectroscopic (FT–IR, Raman, UV–vis) properties and thermal (TGA/DSC) behavior

A new synthetic tellurium oxychloride (ZrTe2O6Cl): structural evaluation, spectroscopic (FT–IR, Raman, UV–vis) properties and thermal (TGA/DSC) behavior
Molecular geometry, intermolecular interactions, vibrational modes, electronic transitions and thermal stability for a novel tellurium oxychloride (ZrTe2O6Cl) were represented in this paper for the first time. A number of experimental techniques and theoretical approaches such as single-crystal X-ray diffraction, thermogravimetric/differential scanning calorimetry (TGA/DSC), vibrational (FT–IR, Raman) spectroscopy, ultraviolet-visible (UV–vis) spectroscopy and Hirshfeld surface (HS) were applied. For theoretically evaluation of ZrTe2O6Cl, density functional theory at B3LYP/6–311++G(2d,2p) basis set was applied. Structural analysis and HS method revealed that the title compound belongs to a space group C2/m, where reverse intermolecular interactions ([Zr–O]crd/ltc–[Te–O]ltc/crd) are mainly evident. The O···O contacts were found as the most pronounced interactions (38.6 % of the overall HS) in ZrTe2O6Cl, followed by Zr···O/O···Zr (18.4 % of the overall HS) and Te···O/O···Te (15.9 % of the overall HS). Based on the electronic (UV–vis) spectrum, ZrTe2O6Cl was found to absorb the most strongly in the energy region between 200 nm and 240 nm. A detailed thermal decomposition mechanism showed that the compound under investigation is stable up to 200 °C, where after its degradation proceeds as a stepwise reaction.
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来源期刊
Journal of Molecular Structure
Journal of Molecular Structure 化学-物理化学
CiteScore
7.10
自引率
15.80%
发文量
2384
审稿时长
45 days
期刊介绍: The Journal of Molecular Structure is dedicated to the publication of full-length articles and review papers, providing important new structural information on all types of chemical species including: • Stable and unstable molecules in all types of environments (vapour, molecular beam, liquid, solution, liquid crystal, solid state, matrix-isolated, surface-absorbed etc.) • Chemical intermediates • Molecules in excited states • Biological molecules • Polymers. The methods used may include any combination of spectroscopic and non-spectroscopic techniques, for example: • Infrared spectroscopy (mid, far, near) • Raman spectroscopy and non-linear Raman methods (CARS, etc.) • Electronic absorption spectroscopy • Optical rotatory dispersion and circular dichroism • Fluorescence and phosphorescence techniques • Electron spectroscopies (PES, XPS), EXAFS, etc. • Microwave spectroscopy • Electron diffraction • NMR and ESR spectroscopies • Mössbauer spectroscopy • X-ray crystallography • Charge Density Analyses • Computational Studies (supplementing experimental methods) We encourage publications combining theoretical and experimental approaches. The structural insights gained by the studies should be correlated with the properties, activity and/ or reactivity of the molecule under investigation and the relevance of this molecule and its implications should be discussed.
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