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Averaged Scale in Electronegativity Joined to Physicochemical Perturbations. Consequences of Periodicity

机译:电气增长的平均刻度加入物理化学扰动。周期性的后果

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In this work, we propose a new representative electronegativity scale χ_(DC) based on a statistical analysis of 11 electronegativity scales associated with electric ionic resonance energy, ionization potential, electron affinity, polarizability, electric force, average orbital energy, chemical potential, electrochemical reduction potential, and electric potential energy. Among these scales, it is the new PE° electronegativity scale, which relates the reduction potential E ° to Pauling’s electronegativity scale. The scale χ_(DC) gives more weight to the physicochemical factors, which influence the electronegativity, but this scale is not necessarily the best electronegativity scale for the element. This scale is based on (1) the average of the experimental electronegativity values; (2) the proximity of an experimental value to the average given by the difference and the ratio to this average; (3) in critical cases, the periodicity network of the periods and the groups; and (4) the periodicity of the sequence of the ratios of the experimental electronegativity values to the best-selected electronegativity value. We have also taken as probe scales Nagle’s, Allred and Rochow’s, Allen’s (Hoffman’s and Politzer’s), PE°, Gordy’s, and Ghosh’s electronegativity scales in order to investigate the trend of the physicochemical factors which influence the electronegativity. With this trend, we have determined zones where a physicochemical property influences the electronegativity more. We have also found that physicochemical perturbations such as the orbital overlap, the stable configurations, the nephelauxetic effect, the width of the band gap, the ligand field stabilization energy, the penetration of the orbitals, and the lattice energy influence the electronegativity. Besides, we have analyzed the exactness of the electronegativity of the scales through the periodical ranking, the chemical tripartite separation among ionic, covalent, or metallic bond (taking into account the amplitude of the metalloid band), and the physicochemical property of bond force. The representative χ_(DC) electronegativity scale is the best in periodicity, followed by Batsanov’s and Pauling’s scales. In the type of chemical bond, the ranking depends on the number and kind of compounds in the sample, but in general, Pauling’s, the ARS, and Batsanov’s electronegativity scales are the best with a confidence interval of 95%. On the other hand, in the physical bond force, Batsanov’s, Pauling’s, Mulliken’s, Nagle’s, Allen’s, the ARS, and the χ_(DC) electronegativity scales are the best scales. Also, we have considered the free atom and the in situ hypotheses of electronegativity and used the low and high oxidation states to verify these hypotheses. Besides, as an example of the utility of this ranking of scales, we have analyzed the relation of lanthanum La and lutetium Lu to Group 3, lanthanides, and hafnium Hf. We also analyze the vertical, horizontal, Knight’s move, and isodiagonal periodicity of the electronegativity and associate this periodicity to a similar chemical–physical behavior of elements or ions.
机译:在这项工作中,我们提出了一种新的代表性电信率秤χ_(DC),基于11个电控尺度与电离子共振能,电离电位,电子亲和力,极化性,电力,平均轨道能量,化学势,电化学的电解尺度的统计分析减少电位和电势能。在这些尺度中,它是新的PE°电负性刻度,其将降低电位 e°与鲍林的电负性级相关联。 scale_(DC)为物理化学因素提供了更多的重量,这影响了电信管,但这种比例不一定是元件的最佳电气增长尺度。该规模基于(1)实验电负性值的平均值; (2)实验值接近差异和该平均值给出的平均值; (3)在批判案件中,期间的周期性网络和群体; (4)实验电负性值的比率序列的周期性至最佳选择的电负性值。我们也被视为探测鳞片,allen和Rochow的,艾伦(霍夫曼和Politzer),PE°,Gordy和Ghosh的电信秤,以调查影响电气引伸性的物理化学因素的趋势。通过这种趋势,我们已经确定了物理化学性质更多地影响电信的区域。我们还发现,轨道重叠等物理化学扰动,稳定的构造,肾儿效应,带隙的宽度,配体场稳定能量,轨道的渗透,并晶格能量影响电阻。此外,我们通过期刊排名分析了尺度的电负性的确切性,离子,共价或金属键之间的化学三方分离(考虑了金属带的幅度),以及粘合力的物理化学性质。代表χ_(DC)电信率刻度是最佳的周期性,其次是BATSANOV和PAULING的尺度。在化学键的类型中,排名取决于样品中的化合物的数量和种类,但通常,保罗,ARS和Batsanov的电信值尺度是最好的95%的最佳。另一方面,在物理债券中,巴棘犬,保罗,穆利克伦,名称,艾伦,ars和χ_(dc)电信尺度是最佳尺度。此外,我们已经考虑了自由原子和原位假设的电负性,并使用低氧化状态来验证这些假设。此外,作为这种尺度等级的效用的一个例子,我们分析了镧La和Lutetium Lu对第3组,镧系元素和Hafnium Hf的关系。我们还分析了垂直,水平,骑士的移动和Isodiagonal周期性的电负性,并将这种周期性与元素或离子的类似化学物理行为相关联。

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