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Synthesis, Characterization, and Catalytic Applications of Transition Metal Oxide/Carbonate Nanomaterials.

机译:过渡金属氧化物/碳酸盐纳米材料的合成,表征和催化应用。

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摘要

This thesis contains two parts: 1) Studies of novel synthesis methods and characterization of advanced functional manganese oxide octahedral molecular sieves (OMS) and their applications in Li/Air batteries, solvent free toluene oxidations, and ethane oxydehydrogenation (ODH) in the presence of CO2, recycling the green house gas. 2) Development of unique Ln2O2CO3 (Ln = rare earth) layered materials and ZnO/La2O2CO3 composites as clean energy biofuel catalysts. These parts are separated into five different focused topics included in this thesis.;The first topic presents studies of catalytic activities of a single step synthesized gamma-MnO2 octahedral molecular sieve nano fiber in solvent free atmospheric oxidation of toluene with molecular oxygen. Solvent free atmospheric oxidation of toluene is a notoriously difficult liquid phase oxidation process due to the challenge of oxidizing sp³ hybridized carbon in inactive hydrocarbons. The synthesized gamma-MnO2 showed excellent catalytic activity and good selectivity under the mild atmospheric reflux system. Under optimized conditions, a 47.8% conversion of toluene, along with 57% selectivity of benzoic acid and 15% of benzaldehyde were obtained. The effects of reaction time, amount of catalyst and initiator, and the reusability of the catalyst were investigated.;The second topic involves developing titanium containing gamma-MnO 2 (TM) hollow spheres as electrocatalysts in Li/Air Batteries. Li/air batteries have recently attracted interest because they have the largest theoretical specific energy (11,972 Wh.kg-1) among all practical electrochemical couples. In this study, unique hollow aspheric materials were prepared for the first time using a one-step synthesis method and fully characterized by various techniques. These prepared materials were found to have excellent electrocatalytic activation as cathode materials in lithium-air batteries with a very high specific capacity (up to 2.3 A.h/g of carbon).;The third topic in this thesis presents studies of ethane oxydehydrogenation (ODH) in the presence of CO2 over the octahedral molecular sieve (OMS-2) catalyst. Conversion of CO2 into organic compounds has been studied intensively. Ethane catalytic oxydehydrogenation in the presence of CO2 offers an attractive route for converting CO2. In this study, using OMS-2 as the catalyst in C2H6 dehydrogenation in the presence of CO2 is an example where extreme conditions are used to drive high conversions of ethane (> 70%) and CO2 (up to 56%) with high selectivity towards ethylene (87%) with a short contact time (0.6 s). This inexpensive material also showed high stability during the process, and the presence of CO2 removed coke depositions throughout the catalyst. The results obtained from this study open up new possibilities for olefin dehydrogenations in the presence of CO2, a perfect feedstock for any process involving ethylene carbonylation with the recycling of the greenhouse gas.;The fourth part of this thesis presents a ZnO/La2O2CO 3 composite prepared by a new and easy method and discusses the use of these materials as heterogeneous catalysts for ultra-fast microwave biodiesel production at low temperatures. The search for solid state materials with high catalytic activities is one of the key steps toward reducing the cost of producing biodiesel. We present a high biodiesel yield (> 95%) in less than 5 minutes under mild reaction conditions ( 100°C) on a ZnO/La 2O2CO3 heterogeneous catalyst, showing no Zn and La leaching into the reaction medium. The catalyst has a higher reaction rate than the homogeneous KOH catalyst with the assistance of microwave irradiation. All of these results promote the industrial application of the synthesized ZnO/La2O2CO3 as a potential heterogeneous catalyst for fast biodiesel production, avoiding many of the issues found in both commercial and independently published catalysts.;Following the fourth part of this thesis, the fifth part presents the synthesis and characterization of a series of rare earth Ln2O 2CO3 (Ln = La, Eu, Nd, and Sm) layered materials as novel basic materials for the biodiesel production. Reports on rare earth oxycarbonate Ln2O2CO3 (Ln = rare earths) layered materials as heterogeneous basic catalysts having novel low temperature catalytic activities are rare. In this thesis I successfully synthesized active rare earth (Ln = La, Nd, Eu, and Sm) metal oxycarbonate based layered materials to catalyze the transesterification process under mild conditions ( 85°C), obtaining a high fatty acid methyl ester (FAME) yield (> 95%) in a short reaction time ( 20 minutes). The results of low temperature activities and short reaction times with minimum energy consumption show them to have solid potential as alkali metal hydroxide/alkoxide alternatives for industrial applications.
机译:本论文包括两个部分:1)研究新型合成方法和高级功能性锰氧化物八面体分子筛(OMS)的表征及其在锂/空气电池中的应用,无溶剂甲苯氧化和乙烷氧化脱氢(ODH)的存在。二氧化碳,回收温室气体。 2)开发独特的Ln2O2CO3(Ln =稀土)层状材料和ZnO / La2O2CO3复合材料作为清洁能源生物燃料催化剂。这些部分分为五个不同的主题。本论文的第一个主题是单步合成的γ-MnO2八面体分子筛纳米纤维在无溶剂大气中甲苯与分子氧的氧化反应中的催化活性。众所周知,甲苯的无溶剂大气氧化是一个非常困难的液相氧化过程,这是因为在惰性烃中氧化sp 3杂化碳存在挑战。在温和的大气回流条件下,合成的γ-MnO2表现出优异的催化活性和良好的选择性。在优化的条件下,可获得47.8%的甲苯转化率,57%的苯甲酸选择性和15%的苯甲醛选择性。研究了反应时间,催化剂和引发剂用量以及催化剂的可重复使用性的影响。第二个课题是开发含锂的γ-MnO2(TM)空心球作为锂/空气电池中的电催化剂。锂/空气电池最近引起了人们的兴趣,因为它们在所有实际的电化学对中具有最大的理论比能(11,972 Wh.kg-1)。在这项研究中,首次使用一步合成方法制备了独特的空心非球面材料,并通过各种技术对其进行了全面表征。发现这些制备的材料具有极高的比容量(高达2.3 Ah / g碳)作为锂-空气电池中的正极材料具有出色的电催化活化作用。;本论文的第三个主题是乙烷氧脱氢(ODH)研究在八面体分子筛(OMS-2)催化剂上在CO2存在下。已经深入研究了将CO 2转化为有机化合物的方法。在CO2存在下的乙烷催化氧化脱氢为转化CO2提供了有吸引力的途径。在这项研究中,使用OMS-2作为催化剂,在CO2存在的情况下进行C2H6脱氢反应,就是一个极端条件,用于驱动乙烷(> 70%)和CO2(高达56%)的高转化率,并具有较高的选择性。乙烯(87%),接触时间短(0.6 s)。这种廉价的材料在加工过程中还显示出高稳定性,并且CO 2的存在消除了整个催化剂中的焦炭沉积。这项研究获得的结果为存在CO2的烯烃脱氢开辟了新的可能性,对于任何涉及乙烯羰基化和温室气体回收的工艺,CO2都是理想的原料。本论文的第四部分介绍了ZnO / La2O2CO 3复合材料用一种新的简便方法制备了这些化合物,并讨论了这些材料作为非均相催化剂在低温下超快微波生物柴油生产中的用途。寻找具有高催化活性的固态材料是降低生产生物柴油成本的关键步骤之一。我们在ZnO / La 2O2CO3非均相催化剂上,在温和的反应条件(<100°C)下,不到5分钟即可在不到5分钟的时间内获得较高的生物柴油收率(> 95%),表明没有Zn和La浸出到反应介质中。在微波辐射的辅助下,该催化剂具有比均相KOH催化剂更高的反应速率。所有这些结果促进了合成的ZnO / La2O2CO3作为快速生物柴油生产中潜在的非均相催化剂的工业应用,避免了在商业催化剂和独立出版的催化剂中发现的许多问题。本论文的第四部分,第五部分提出了一系列稀土Ln2O 2CO3(Ln = La,Eu,Nd和Sm)层状材料的合成和表征,作为生物柴油生产的新型基础材料。稀土碳酸盐Ln2O2CO3(Ln =稀土)层状材料作为具有新颖的低温催化活性的非均相碱性催化剂的报道很少。在这篇论文中,我成功地合成了活性稀土(Ln = La,Nd,Eu和Sm)金属碳酸盐基层状材料,以在温和条件下(<85°C)催化酯交换反应,从而获得了高脂肪酸甲酯(FAME) )在较短的反应时间内(<20分钟)收率(> 95%)。低温活性和较短的反应时间以及最低的能耗结果表明,它们具有作为工业应用中碱金属氢氧化物/醇盐替代品的潜力。

著录项

  • 作者

    Jin, Lei.;

  • 作者单位

    University of Connecticut.;

  • 授予单位 University of Connecticut.;
  • 学科 Chemistry Inorganic.;Nanoscience.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 158 p.
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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