Modeling solubility and acid-base properties of some polar side chain amino acids in NaCl and (CH <ce:inf loc='post'>3</ce:inf>) <ce:inf loc='post'>4</ce:inf>NCl aqueous solutions at different ionic strengths and temperatures
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Modeling solubility and acid-base properties of some polar side chain amino acids in NaCl and (CH 3) 4NCl aqueous solutions at different ionic strengths and temperatures

机译:NaCl中一些极侧链氨基酸的溶解度和酸碱性质(CH 3 4 NCL水溶液,不同离子强度和温度

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AbstractThe aim of the paper is to perform a critical analysis of the thermodynamic properties of five L-α-amino acids, namely arginine, aspartic acid, glutamic acid, glutamine and histidine. New potentiometric measurements to determine protonation constants and solubility (not for arginine) in NaCl and (CH3)4NCl aqueous solutions are reported, in order to investigate the medium effect. A preliminary analysis of the state of art evidenced the considerable amount of data in the ionic strength range 0?I/mol kg?1≤ 0.1 and a lack of data (especially for arginine and glutamine) above 0.1?mol?kg?1. For this reason, this paper deals with an analysis of both the literature and the new experimental data, assigning a weight to each datum as a function of its reliability. The ionic strength dependence of the protonation constants was interpreted using the EDH (Extended Debye-Hückel), the SIT (Specific ion Interaction Theory) and the Pitzer approaches. Simultaneous analysis of solubility data and protonation constants allowed us to obtain the Setschenow and the activity coefficients of all the species involved in the equilibria. The differences between the two media were also interpreted considering the formation of weak complexes between the ions of the supporting electrolytes and the ligands according to the complex formation model.Finally, recommended, tentative or provisional data for protonation constants and protonation enthalpy changes of the five amino acids at differ
机译:<![CDATA [ 抽象 纸张的目的是对五个L-α-氨基酸的热力学性质进行关键分析,即精氨酸,天冬氨酸,谷氨酸,谷氨酰胺和组氨酸。新电位测量以确定NaCl和(Ch 3 4 NCL水溶液,以研究中等效果。对现有技术的初步分析证明了离子强度范围0的相当数量的数据0?<? I / mol kg ?1 ≤0.1,缺乏数据(特别是对于精氨酸和谷氨酰胺)以上0.1Ω摩尔·kg Δ1。出于这个原因,本文涉及文献和新实验数据的分析,将重量分配给每个基准的可靠性。使用EDH(延伸的Debye-Hückel),静坐(特定离子相互作用理论)和Pitzer方法来解释质子化常数的离子强度依赖性。同时分析溶解度数据和质子化常数使我们能够获得速度均匀的所有物种的Setchenow和活动系数。考虑到根据复杂的形成模型的支撑电解质和配体之间的离子与配体之间的弱复合物的形成也解释了两种培养基之间的差异。 最终,质子化常数的推荐,暂定或临时数据和五种氨基酸的质子化焓变化

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