INTERNATIONAL COLLABORATION IN CHEMISTRY: Local structures of heteroatom environments and their effects on the reactivities of alumino-and borosilicates
INTERNATIONAL COLLABORATION IN CHEMISTRY: Local structures of heteroatom environments and their effects on the reactivities of alumino-and borosilicates
批准号:
0924654
负责人:
Bradley Chmelka
金额:
$45.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-01 至 2013-06-30
中文摘要
该项目由化学学部实验物理化学项目资助,并得到国际科学与工程办公室的支持,来自加州大学圣巴巴拉分校的Chmelka教授及其来自国家科学条件研究中心Extrêmes et matsamriaux In orlsamans的法国合作者,寻求理解和控制高活性和高选择性的含杂原子多孔硅酸盐和二氧化硅催化剂的分子起源,旨在提高化学过程的能源效率。这两个小组在催化剂合成、表征和光谱方法开发方面具有互补的专业知识。该项目的主要目标是:(i)开发和应用最新的固态核磁共振(NMR)光谱方法,以确定纳米多孔硅酸盐和二氧化硅材料中具有重要催化作用的铝和硼杂原子部分及其附近的局部组成和结构;(ii)利用由此产生的见解来设计和控制多孔硅酸盐和二氧化硅框架中的杂原子环境,以改善其宏观吸附和反应性能;(iii)教育和训练学生对最先进的核磁共振波谱方法和新催化材料的合成、表征和性能有深刻的基本理解。局部组成和结构特征,特别是框架铝和硼的位置,是很重要的,因为它们对许多催化材料的宏观吸附和反应性质有至关重要的影响,例如铝硅酸盐沸石,目前世界上几乎所有的汽油产量都是由铝硅酸盐沸石生产的。尽管它们在技术上具有重要意义,但在分子水平上,它们的活动起源仍然未知,主要是因为对Al和B活性位点的局部环境了解不足。从固态核磁共振研究中获得的见解将与催化材料的宏观物理化学(例如,酸度,反应性,吸附性)特性相关联,以获得对其复杂行为的新的分子水平理解。该项目更广泛的影响包括展示新的和通用的方法来测量、理解、设计和改进当地的组成和结构特征,这些特征解释了不同种类催化剂的反应性。在国内和国际上对学生进行这些领域的培训是很重要的,将积极促进代表性不足群体的学生参与。美国和法国合作伙伴之间的协作和互补努力将为学生提供跨文化和跨学科的研究和教育机会,这些机会将广泛转移。预计从拟议项目中获得的见解将使学生和更广泛的科学界能够开发下一代材料,旨在提高工艺和设备的能源效率。
英文摘要
In this project, funded by the Experimental Physical Chemistry Program of the Division of Chemistry with support from the Office of International Science & Engineering, Professor Chmelka from University of California, Santa Barbara and his French collaborators from the Centre National de la Recherche Scientifique Laboratoire de Conditions Extrêmes et Matériaux in Orléans, seek to understand and control the molecular origins of the high activities and high selectivities of heteroatom-containing porous silicate and silica catalysts aimed at improving the energy efficiencies of chemical processes. The two groups have complementary expertises in catalyst synthesis, characterization, and spectroscopy method development. The main objectives of the project are:(i) to develop and apply new state-of-the-art methods of solid-state nuclear magnetic resonance (NMR) spectroscopy to establish the local compositions and structures at and near catalytically important aluminum and boron heteroatom moieties in nanoporous silicate and silica materials;(ii) to use the resulting insights to design and control heteroatom environments in porous silicate and silica frameworks to improve their macroscopic adsorption and reaction properties; and(iii) to educate and train students to provide strong fundamental understanding of state-of-the-art methods of NMR spectroscopy and syntheses, characterization, and properties of new catalytic materials.Local compositional and structural features, especially of framework aluminum and boron sites, are important, because they crucially influence the macroscopic adsorption and reaction properties of many catalytic materials, such as aluminosilicate zeolites that are responsible for nearly all of the world's current gasoline production. Despite their technological importance, much remains unknown at a molecular level about the origins of their activities, principally because of insufficient knowledge about the local environments at the Al and B active sites. Insights gained from solid-state NMR investigations will be correlated with macroscopic physicochemical (e.g., acidity, reactivity, adsorption) properties of the catalytic materials to obtain new molecular-level understanding of their complicated behaviors.Broader impacts of the project include the demonstration of new and general approaches for the measurement, understanding, design, and improvement of the local compositional and structural features that account for the reactivities of diverse classes of catalysts. Training of students in these areas is important, both nationally and internationally, and participation by students from underrepresented groups will be actively promoted. The collaborative and complementary efforts between the U.S. and French partners will provide cross-cultural and interdisciplinary research and education opportunities for students that will be broadly transferrable. It is expected that the insights gained from the proposed project will enable students and the broader scientific community to develop next-generation materials aimed at improving the energy-efficiency of processes and devices.
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