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离子水合物,M(p)X(q).nH(2)O:晶格能与标准生成焓的估算

Ionic hydrates, M(p)X(q).nH(2)O: lattice energy and standard enthalpy of formation estimation.

作者信息

Jenkins H Donald Brooke, Glasser Leslie

机构信息

Department of Chemistry, University of Warwick, Coventry CV4 7AL, West Midlands, UK.

出版信息

Inorg Chem. 2002 Aug 26;41(17):4378-88. doi: 10.1021/ic020222t.

Abstract

This paper is one of a series (see: Inorg. Chem. 1999, 38, 3609; J. Am. Chem. Soc. 2000, 122, 632; Inorg. Chem. 2002, 41, 2364) exploring simple approaches for the estimation of lattice energies of ionic materials, avoiding elaborate computation. Knowledge of lattice energy can lead, via thermochemical cycles, to the evaluation of the underlying thermodynamics involving the preparation and subsequent reactions of inorganic materials. A simple and easy to use equation for the estimation of the lattice energy of hydrate salts, U(POT)(M(p)X(q).nH(2)O) (and therefore for solvated salts, M(p)X(q).nS, in general), using either the density or volume of the hydrate, or of another hydrate, or of the parent anhydrous salt or the volumes of the individual ions, is derived from first principles. The equation effectively determines the hydrate lattice energy, U(POT)(M(p)X(q).nH(2)O), from a knowledge of the (estimated) lattice energy, U(POT)(M(p)X(q)), of the parent salt by the addition of ntheta(U) where theta(U)(H(2)O)/kJ mol(-1) = 54.3 and n is the number of water molecules. The average volume of the water molecule of hydration, V(m)(H(2)O)/nm(3) = 0.0245, has been determined from data on a large series of hydrates by plotting hydrate/parent salt volume differences against n. The enthalpy of incorporation of a gaseous water molecule into the structure of an ionic hydrate, [Delta(f)H degrees (M(p)X(q).nH(2)O,s) - Delta(f)H degrees (M(p)X(q),s) - nDelta(f)H degrees (H(2)O,g)], is shown to be a constant, -56.8 kJ (mol of H(2)O)(-1). The physical implications with regard to incorporation of the water into various types of solid-state structures are considered. Examples are given of the use of the derived hydrate lattice energy equation. Standard enthalpies of formation of a number of hydrates are thereby predicted.

摘要

本文是一系列论文之一(见:《无机化学》,1999年,第38卷,第3609页;《美国化学会志》,2000年,第122卷,第632页;《无机化学》,2002年,第41卷,第2364页),探讨估算离子材料晶格能的简单方法,避免复杂的计算。晶格能的知识可通过热化学循环,用于评估涉及无机材料制备及后续反应的基础热力学。本文从第一原理推导得出一个简单易用的方程,用于估算水合盐的晶格能U(POT)(M(p)X(q).nH₂O)(因此一般也适用于溶剂化盐M(p)X(q).nS),该方程可使用水合物、其他水合物、母体无水盐的密度或体积,或单个离子的体积。该方程通过添加nθ(U),根据母体盐的(估算)晶格能U(POT)(M(p)X(q))有效确定水合盐的晶格能U(POT)(M(p)X(q).nH₂O),其中θ(U)(H₂O)/kJ mol⁻¹ = 54.3,n为水分子数。通过绘制水合物/母体盐体积差与n的关系图,根据大量水合物的数据确定了水合水分子的平均体积V(m)(H₂O)/nm³ = 0.0245。气态水分子并入离子水合物结构的焓变[Δ(f)H°(M(p)X(q).nH₂O,s) - Δ(f)H°(M(p)X(q),s) - nΔ(f)H°(H₂O,g)]被证明是一个常数,为 -56.8 kJ(每摩尔H₂O)⁻¹。文中考虑了水并入各种固态结构的物理意义。给出了所推导的水合盐晶格能方程的使用示例。据此预测了多种水合物的标准生成焓。

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