用三protic酸定义缓冲过程,而不依赖于stewart -电中性的考虑。

Q1 Mathematics
Minhtri K Nguyen, Liyo Kao, Ira Kurtz
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引用次数: 3

摘要

在水溶液中加入质子后,氢离子负荷的一部分将被束缚,即被缓冲。在含有三protic酸的水溶液中,H+可以与三种不同状态的酸结合,也可以与H2O自电离产生的OH-离子结合。在对三protic酸的缓冲过程进行定量分析时,必须确定三protic酸的三种状态中H+的分配以及溶液中OH-离子的分配,以便预测平衡pH值。然而,以前的定量方法是模拟三protic酸滴定行为,并用于预测平衡pH依赖于电子中性/电荷平衡考虑的数学方便性。这一事实在文献中引起了混淆,并导致了电荷平衡/电中性是调节质子缓冲的一个因果因素的假设(Stewart公式)。然而,正如我们之前所示,尽管电荷平衡可以在数学上用作推导各种公式的方便工具,但电中性本身并不是一个基本的物理化学参数,它在机械上参与了潜在的缓冲和质子转移反应。数学工具和基本物理化学参数之间缺乏区别,这是目前关于斯图尔特酸碱分析公式争论的部分原因。因此,我们提出了以下问题:是否有可能生成一个方程来定义和预测仅基于H+分配而不包含电子中性的推导中的三protic酸的缓冲?为了实现这一目标,我们利用:1)H+缓冲分区;2)质量守恒;3)酸碱平衡。为了验证该模型,我们将预测的平衡pH值与添加了HCl的Na2HPO4水溶液的测量pH值进行了比较。测量的pH值与我们方程的预测非常吻合。我们的结果提供了进一步的重要证据,证明人们可以在不依赖于电中性(Stewart公式)考虑的情况下对酸碱现象的化学进行数学建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Defining the buffering process by a triprotic acid without relying on Stewart-electroneutrality considerations.

Defining the buffering process by a triprotic acid without relying on Stewart-electroneutrality considerations.

Upon the addition of protons to an aqueous solution, a component of the H+ load will be bound i.e. buffered. In an aqueous solution containing a triprotic acid, H+ can be bound to three different states of the acid as well as to OH- ions that are derived from the auto-ionization of H2O. In quantifying the buffering process of a triprotic acid, one must define the partitioning of H+ among the three states of the acid and also the OH- ions in solution in order to predict the equilibrium pH value. However, previous quantitative approaches that model triprotic acid titration behaviour and used to predict the equilibrium pH rely on the mathematical convenience of electroneutrality/charge balance considerations. This fact has caused confusion in the literature, and has led to the assumption that charge balance/electroneutrality is a causal factor in modulating proton buffering (Stewart formulation). However, as we have previously shown, although charge balance can be used mathematically as a convenient tool in deriving various formulae, electroneutrality per se is not a fundamental physicochemical parameter that is mechanistically involved in the underlying buffering and proton transfer reactions. The lack of distinction between a mathematical tool, and a fundamental physicochemical parameter is in part a reason for the current debate regarding the Stewart formulation of acid-base analysis. We therefore posed the following question: Is it possible to generate an equation that defines and predicts the buffering of a triprotic acid that is based only on H+ partitioning without incorporating electroneutrality in the derivation? Towards this goal, we derived our new equation utilizing: 1) partitioning of H+ buffering; 2) conservation of mass; and 3) acid-base equilibria. In validating this model, we compared the predicted equilibrium pH with the measured pH of an aqueous solution consisting of Na2HPO4 to which HCl was added. The measured pH values were in excellent agreement with the predictions of our equation. Our results provide further important evidence that one can mathematically model the chemistry of acid-base phenomenology without relying on electroneutrality (Stewart formulation) considerations.

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来源期刊
Theoretical Biology and Medical Modelling
Theoretical Biology and Medical Modelling MATHEMATICAL & COMPUTATIONAL BIOLOGY-
自引率
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审稿时长
6-12 weeks
期刊介绍: Theoretical Biology and Medical Modelling is an open access peer-reviewed journal adopting a broad definition of "biology" and focusing on theoretical ideas and models associated with developments in biology and medicine. Mathematicians, biologists and clinicians of various specialisms, philosophers and historians of science are all contributing to the emergence of novel concepts in an age of systems biology, bioinformatics and computer modelling. This is the field in which Theoretical Biology and Medical Modelling operates. We welcome submissions that are technically sound and offering either improved understanding in biology and medicine or progress in theory or method.
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