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1.
Material encapsulation is a relatively new technique for coating a micro/nanosize particle or droplet with polymeric or inorganic shell. Encapsulation technology has many applications in various fields including drug delivery, cosmetic, agriculture, thermal energy storage, textile, and self-healing polymers. Poly(methyl methacrylate) (PMMA) is widely used as shell material in encapsulation due to its high chemical stability, biocompatibility, nontoxicity, and good mechanical properties. The main approach for micro/nanoencapsulation of materials using PMMA as shell comprises emulsion-based techniques such as emulsion polymerization and solvent evaporation from oil-in-water emulsion. In the present review, we first focus on the encapsulation techniques of liquid materials with PMMA shell by analyzing the effective processing parameters influencing the preparation of PMMA micro/nanocapsules. We then describe the morphology of PMMA capsules in emulsion systems according to thermodynamic relations. The techniques to investigation of mechanical properties of capsule shell and the release mechanisms of core material from PMMA capsules were also investigated. © 2019 Wiley Periodicals, Inc. J. Appl. Polym. Sci. 2019 , 136, 48039. 相似文献
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Haliza Abdul Aziz Noor Azeerah Abas Bonnie Tay Yen Ping Zainab Idris 《Journal of surfactants and detergents》2020,23(2):251-262
The technology for transesterification reactions between methyl esters and alcohols is well established by using classical homogeneous alkaline catalysts, which provide high conversion of methyl esters to specialty or nonindigenous esters. However, in certain products where the purity of the esters is of concern, the removal of homogeneous catalysts after the completion of the reaction is a challenge in terms of production cost and water footprint. Therefore, a study to investigate the potential of heterogeneous catalysts was conducted on reactions between methyl palmitate and triethanolamine. The degree of basicity and active surface area of calcium oxide (CaO), zinc oxide (ZnO), and magnesium oxide (MgO) were first characterized by using temperature-programmed desorption (TPD-CO2) and Brunauere–Emmett–Teller (BET), respectively. Among the metal oxides investigated, the CaO catalyst showed the best catalytic activity toward the transesterification process as it gave the highest conversion of methyl palmitate and yielded fatty esteramine compositions similar to the conventional homogeneous catalyst. The optimum transesterification condition by using the CaO catalyst utilized a lower vacuum system of approximately 200 mbar, which could minimize a considerable amount of energy consumption. Furthermore, low CaO dosage of 0.1% was able to give a conversion of 94.5% methyl ester and formed esteramine at 170 °C for 2 h. Therefore, the production of esterquats from esteramine may become more economically feasible through the methyl ester route by using the CaO catalyst, which can be recycled three times. 相似文献
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Epoxy novolac/anhydride cure kinetics has been studied by differential scanning calorimetry under isothermal conditions. The system used in this study was an epoxy novolac resin (DEN431), with nadic methyl anhydride as hardener and benzyldimethylamine as accelerator. Kinetic parameters including the reaction order, activation energy and kinetic rate constants, were investigated. The cure reaction was described with the catalyst concentration, and a normalized kinetic model developed for it. It is shown that the cure reaction is dependent on the cure temperature and catalyst concentration, and that it proceeds through an autocatalytic kinetic mechanism. The curing kinetic constants and the cure activation energies were obtained using the Arrhenius kinetic model. A suggested kinetic model with a diffusion term was successfully used to describe and predict the cure kinetics of epoxy novolac resin compositions as a function of the catalyst content and temperature. Copyright © 2003 Society of Chemical Industry 相似文献
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纳米钛硅分子筛TS-1催化甲乙酮氨氧化合成甲乙酮肟 总被引:4,自引:0,他引:4
以纳米钛硅分子筛TS-1为催化剂,采用三口玻璃反应器研究了甲乙酮(MEK)氨氧化的反应性能。采用SEM、TEM和XRD等分析手段表征了TS-1的晶粒尺寸。考察了TS-1的晶粒尺寸、反应物的加料方式、溶剂、催化剂用量、反应温度和反应物料配比对甲乙酮氨氧化反应性能的影响。结果表明,甲乙酮氨氧化反应的最佳反应条件为:75℃,n(NH3):n(H2O2):n(MEK)=4.0:1.5:1.0,TS-1用量21.6g(以1mol MEK计);H2O2和氨水连续进料,最佳溶剂为叔丁醇或叔丁醇和水的混和液。在最佳反应条件下,甲乙酮的转化率和甲乙酮肟的选择性可分别达到99.4%和99.8%。 相似文献
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MnCl_2/活性炭催化合成正丁基氨基甲酸甲酯 总被引:2,自引:0,他引:2
通过对不同活性组分的筛选,开发出活性炭负载氯化锰(M nC l2/AC)催化剂,用于碳酸二甲酯(DMC)和正丁胺甲氧羰基化反应合成正丁基氨基甲酸甲酯(MBC)。考察了M nC l2负载量对M nC l2/AC催化剂催化性能的影响及反应温度、反应时间、催化剂用量和原料配比对反应的影响。实验结果表明,适宜的M nC l2负载量为0.2mm ol/g;适宜的反应条件为:n(DMC)∶n(正丁胺)=3,催化剂的质量分数为5%,反应温度80℃,反应时间7h。在此条件下,正丁胺能完全转化,MBC的收率达到96.5%。探讨了不同载体负载的M nC l2催化剂的催化性能,发现中性载体有利于甲氧羰基化反应。 相似文献