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Graft copolymerization of 4-vinylpyridine onto cellulose using Co (III) acetylacetonate comlex in aqueous medium

机译:在含水介质中使用乙酰丙酮钴(III)络合物将4-乙烯基吡啶接枝到纤维素上

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The graft copolymerization of 4-vinylpyridine (4-VP) onto cellulose has been carried out in heterogeneous conditions with cobaltacetylacetonate complex (Co (acac)_3) under nitrogen atmosphere at 35 ± 0.1 ℃ in aqueous media. The grafting parameters such as graft yield, grafting efficiency, total conversion, frequency of grafting and rate of grafting have been evaluated as a function of concentration of 4-vinylpyridine, cobaltacetylacetonate and reaction temperature of graft copolymerization. Variation in concentration of monomer and initiator leads to a consistent increase in grafting parameters and then show a decreasing trend. The efficient grafting of monomer in presence of cobaltacetylacetonate complex is due to the coordination of the π-electrons of the 4-vinylpyridine with the metal chelate which facilitate the homolytic decomposition of metal-oxygen bond to form radicals at relatively low temperature. The rate of graft copolymerization is directly proportional to the concentration of monomer and the square root of the concentration of the cobaltacetylacetonate complex. The activation energy (ΔEa) for graft copolymeriztion has been calculated using a Arrhenius plot and is 31.0kJ mol~(-1) within the temperature range of 20-40 ℃. The grafting of 4-vinylpyridine has also been studied in presence of various additives and their effects have been suitably explained. On the basis of the experimental observations, reaction steps are proposed and rate expression has been derived.
机译:4-乙烯基吡啶(4-VP)在纤维素上的接枝共聚反应是在非均相条件下,在35±0.1℃的氮气氛下,在水性介质中,使用乙酰乙酰丙酮钴配合物(Co(​​acac)_3)进行的。已经评估了接枝参数,例如接枝产率,接枝效率,总转化率,接枝频率和接枝率,是4-乙烯基吡啶,乙酰丙酮钴的​​浓度和接枝共聚反应温度的函数。单体和引发剂浓度的变化会导致接枝参数不断增加,然后呈下降趋势。在乙酰丙酮钴配合物的存在下单体的有效接枝是由于4-乙烯基吡啶的π电子与金属螯合物的配位,这有助于金属-氧键在相对较低的温度下均解分解形成自由基。接枝共聚的速率与单体的浓度和乙酰丙酮丙酮钴配合物浓度的平方根成正比。接枝共聚反应的活化能(ΔEa)采用Arrhenius图计算,在20-40℃的温度范围内为31.0kJ mol〜(-1)。还已经在各种添加剂的存在下研究了4-乙烯基吡啶的接枝,并且已经适当地解释了它们的作用。在实验观察的基础上,提出了反应步骤并推导了速率表达式。

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