乳酸烷基自催化水解的双态反应动力学

IF 3.9 3区 工程技术 Q2 ENGINEERING, CHEMICAL
Sophie A. Brauer, Isaac A. Mastalski, Madeline A. Murphy, Benjamin R. Hoekstra, Lyle E. Monson, Paul J. Dauenhauer* and Christopher P. Nicholas*, 
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引用次数: 0

摘要

尽管乳酸甲酯和乳酸乙酯在水溶液中会自发水解,但对烷基乳酸盐水解的动力学描述一直局限于酸催化条件。随着反应的进行,生成的乳酸会进一步催化酯水解,而反向酯化反应的速率也会随着酸产物的积累而增加。乳酸水解的反应顺序分为三个动力学阶段:起始/中性水解、自催化水解和平衡。在不同的温度(1.5 至 40 °C)和乳酸甲酯或乳酸乙酯的初始浓度(1 至 40 摩尔%)下,测量了乳酸水解的演化过程,以量化反应阶段之间的动力学转换。较低的温度会导致一个明显的诱导期,在这个诱导期中观察到的水解作用可以忽略不计。初始浓度对诱导期长度的影响是非单调的,分为稀释(乳酸含量低于约 6 摩尔%)和浓缩(高于约 6 摩尔%)两种情况。乳酸盐浓度越低或越高,诱导期越长,反应速度越慢。双重动力学机制最能说明所观察到的水解行为。对于乳酸烷基酯浓度低于 10 摩尔%的水解,从传统酯水解机理中推导出的速率定律可以有效地模拟水解行为,而当乳酸浓度较高时,必须在速率决定步骤中加入额外的水分子,才能适当地捕捉水解行为。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Dual-Regime Reaction Kinetics of the Autocatalytic Hydrolyses of Aqueous Alkyl Lactates

Dual-Regime Reaction Kinetics of the Autocatalytic Hydrolyses of Aqueous Alkyl Lactates

Kinetic description of the hydrolysis of alkyl lactates has been limited to acid-catalyzed conditions despite the spontaneous hydrolysis of methyl lactate and ethyl lactate in aqueous solution. As the reaction progresses, generated lactic acid further catalyzes ester hydrolysis, while the rate of the reverse esterification reaction also increases with the accumulation of acid product. The reaction sequence of lactate hydrolysis is described in three kinetic stages: initiation/neutral hydrolysis, autocatalytic hydrolysis, and equilibrium. The evolution of lactate hydrolysis was measured for varying temperatures (1.5 to 40 °C) and initial concentrations of methyl or ethyl lactate (1 to 40 mol %) to quantify the kinetic transitions between reaction stages. Lower temperatures resulted in a distinct induction period where negligible hydrolysis was observed. The effect of initial concentration on the length of the induction period was nonmonotonic and was divided into dilute (below about 6 mol % lactate) and concentrated (above about 6 mol %) regimes. Solutions of either lower or higher lactate concentration corresponded to longer induction periods and slower reactions. A dual kinetic regime best describes the observed hydrolysis behavior. For hydrolysis of alkyl lactates below 10 mol %, a rate law derived from the conventional ester hydrolysis mechanism effectively modeled behavior, while at higher lactate concentrations, an additional water molecule must be included in the rate-determining step to appropriately capture the hydrolysis behavior.

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来源期刊
Industrial & Engineering Chemistry Research
Industrial & Engineering Chemistry Research 工程技术-工程:化工
CiteScore
7.40
自引率
7.10%
发文量
1467
审稿时长
2.8 months
期刊介绍: ndustrial & Engineering Chemistry, with variations in title and format, has been published since 1909 by the American Chemical Society. Industrial & Engineering Chemistry Research is a weekly publication that reports industrial and academic research in the broad fields of applied chemistry and chemical engineering with special focus on fundamentals, processes, and products.
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