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Mechanistic studies on the degradation of gasoline oxygenates by advanced oxidation technologies and the reaction of 4-methyl-1,2,4-triazoline-3,5-dione with tetracyclopropylethylene.

机译:先进氧化技术降解汽油含氧化合物的机理研究以及4-甲基-1,2,4-三唑啉-3,5-二酮与四环丙基乙烯的反应

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摘要

Gasoline oxygenates (MTBE, methyl tert-butyl ether; DIPE, di-isopropyl ether; ETBE, ethyl tert-butyl ether; TAME, tert-amyl ether) are added to gasoline to boost octane and enhance combustion. The combination of large scale use, high water solubility and only minor biodegradability has now resulted in a significant gasoline oxygenate contamination occurring in surface, ground, and drinking water systems. Combination of hydroxyl radical formation and the pyrolytic environment generated by ultrasonic irradiation (665 kHz) leads to the rapid degradation of MTBE and other gasoline oxygenates in aqueous media.; The presence of oxygen promotes the degradation processes by rapid reaction with carbon centered radicals indicating radical processes involving O 2 are significant pathways. A number of the oxidation products were identified. The formation of products (alcohols, ketones, aldehydes, esters, peroxides, etc) could be rationalized by mechanisms which involve hydrogen which react with oxygen and follow standard oxidation chain processes.; The reactions of N-substituted R-triazolinediones (RTAD; R = CH 3 or phenyl) have attracted considerable interest because they exhibit a number of unusual mechanistic characteristics that are analogous to the reactions of singlet oxygen (1O2) and offer an easy way to provide C-N bond(s) formation. The reactions of triazolinedione with olefins have been widely studied and aziridinium imides are generally accepted to be the reactive intermediates.; We observed the rapid formation of an unusual intermediate upon mixing tetracyclopropylethylene with 4-methyl-1,2,4-triazoline-3,5-dione in CDCl 3. Detailed characterization by NMR (proton, 13C, 2-D NMRs) indicates the intermediate is 5,5,6,6-tetracyclopropyl-3-methyl-5,6-dihydro-oxazolo[3,2- b][1,2,4]-triazolium-2-olate. Such products are extremely rare and have not been studied. Upon warming the intermediate is converted to 2 + 2 diazetidine (major) and ene product (minor).; To further explore the kinetics and dynamics of the reaction activation energies were obtained using Arrhenius plots. Activation energies for the formation of the intermediate from reactants, and 2+2 adduct from the intermediate were determined as 7.48 kcal moll and 19.8 kcal mol−1 with their pre-exponential values of 2.24 × 105 dm 3 mol−1 sec−1 and 2.75 × 108 sec−1, respectively, meaning net slow reactions because of low pre-exponential values caused by steric hindrance.
机译:汽油含氧化合物(MTBE,甲基-丁基醚; DIPE,二异丙醚; ETBE,乙基-丁基醚; TAME, tert -戊醚)添加到汽油中以增强辛烷值并增强燃烧。大规模使用,高水溶性和仅很小的生物降解性的结合现在已导致在地面,地面和饮用水系统中发生大量的汽油含氧化合物污染。羟基自由基形成和超声辐照(665 kHz)产生的热解环境共同导致MTBE和其他汽油含氧化合物在水性介质中迅速降解。氧的存在通过与以碳为中心的自由基快速反应而促进了降解过程,表明涉及O 2 的自由基过程是重要的途径。鉴定出许多氧化产物。产物的形成(醇,酮,醛,酯,过氧化物等)可以通过涉及氢与氧反应并遵循标准氧化链过程的机制来合理化。 N取代的R-三唑啉二酮(RTAD; R = CH 3 或苯基)的反应引起了相当大的兴趣,因为它们表现出许多与单线态氧反应相似的异常机理特征(< super> 1 O 2 ),并提供了形成CN键的简便方法。三唑啉二酮与烯烃的反应已被广泛研究,而叠氮化ium酰亚胺被认为是反应性中间体。我们观察到,在CDCl 3 中将四环丙基乙烯与4-甲基-1,2,4-三唑啉-3,5-二酮混合后,会迅速形成异常中间体。通过NMR的详细表征(质子,13 C,2-D NMR)表明,中间体为5,5,6,6-四环丙基-3-甲基-5,6-二氢-恶唑[3, 2- b ] [1,2,4]-三唑-2-油酸酯。此类产品极为罕见,尚未进行研究。加热后,中间体转化为2 + 2二氮杂环丁烷(主要)和烯产物(次要)。为了进一步探索反应的动力学和动力学,使用阿伦尼乌斯图获得了活化能。由反应物形成中间体和由中间体形成的2 + 2加合物的活化能确定为7.48 kcal摩尔和19.8 kcal mol -1 ,其前指数值为2.24×10 5 dm 3 mol -1 sec -1 和2.75×10 8 sec -1 分别表示由于空间位阻导致的低指数前值而导致的净慢反应。

著录项

  • 作者

    Kim, Duk Kyung.;

  • 作者单位

    Florida International University.;

  • 授予单位 Florida International University.;
  • 学科 Chemistry Organic.; Environmental Sciences.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 206 p.
  • 总页数 206
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 有机化学;环境科学基础理论;
  • 关键词

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