苯胺聚合的实验研究和动力学建模

IF 1.4 4区 化学 Q4 PHYSICS, ATOMIC, MOLECULAR & CHEMICAL Russian Journal of Physical Chemistry B Pub Date : 2024-09-11 DOI:10.1134/S1990793124700490
V. Dharmawat, J. Gyal, P. Sutar
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引用次数: 0

摘要

摘要 聚苯胺是一种用途广泛的导电聚合物。近年来,探索合成聚苯胺的不同途径受到了研究人员的广泛欢迎。本研究主要通过实验研究和随后的数据建模来确定在 277 K 的盐酸水溶液中以过硫酸铵为氧化剂进行苯胺化学(氧化)聚合的动力学。观察了 0.010-0.025 M 的不同氧化剂/单体初始浓度对聚合速率的影响。此外,还研究了不同初始氧化剂与单体摩尔比(1-2.5)下的聚合动力学。利用成熟的动力学速率表达式,确定了最符合实验数据的反应速率常数。此外,还利用动力学参数预测了聚苯胺的浓度,其绝对平均相对偏差在 4% 到 17% 之间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Experimental Study and Kinetic Modeling of Aniline Polymerization

Polyaniline is a conducting polymer with a wide variety of applications. In the recent years, exploring the different avenues for the synthesis of polyaniline has gained immense popularity among the researchers. This study focuses on the experimental investigation and subsequent data modeling to determine the kinetics of chemical (oxidative) polymerization of aniline with ammonium persulfate as an oxidant in aqueous hydrochloric acid solutions at 277 K. The concentration of the polyaniline formed was determined using colorimetry. The effect of different initial concentrations of oxidant/monomer from 0.010–0.025 M on the rate of polymerization was observed. The polymerization kinetics at various initial oxidant to monomer mole ratios from 1–2.5 was also investigated. Using a well-established kinetic rate expression, the reaction rate constants were determined that best fitted the experimental data. Further, the polyaniline concentrations were predicted using the kinetic parameters with an absolute average relative deviation ranging from 4 to 17%.

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来源期刊
Russian Journal of Physical Chemistry B
Russian Journal of Physical Chemistry B 化学-物理:原子、分子和化学物理
CiteScore
2.20
自引率
71.40%
发文量
106
审稿时长
4-8 weeks
期刊介绍: Russian Journal of Physical Chemistry B: Focus on Physics is a journal that publishes studies in the following areas: elementary physical and chemical processes; structure of chemical compounds, reactivity, effect of external field and environment on chemical transformations; molecular dynamics and molecular organization; dynamics and kinetics of photoand radiation-induced processes; mechanism of chemical reactions in gas and condensed phases and at interfaces; chain and thermal processes of ignition, combustion and detonation in gases, two-phase and condensed systems; shock waves; new physical methods of examining chemical reactions; and biological processes in chemical physics.
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