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RUI: The Role of Engineered Ligands in Putative Homogeneous Catalysis: Supporting a Homogeneous Catalyst or Modulating Nanoparticle Formation

RUI: The Role of Engineered Ligands in Putative Homogeneous Catalysis: Supporting a Homogeneous Catalyst or Modulating Nanoparticle Formation
RUI:工程配体在假定均相催化中的作用:支持均相催化剂或调节纳米颗粒形成
批准号:
1956353
负责人:
Margaret Scheuermann
金额:
$23.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2020
资助国家:
美国
项目状态:
未结题
起止时间:
2020-05-01 至 2025-04-30

项目摘要

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中文摘要
翻译
新兴技术,如将二氧化碳(CO2)转化为有用的化学品的能力,以及将空气中的氧气用作化学合成试剂的能力,都依赖于能够加快反应速度和控制形成哪些产物(选择性)的催化剂。催化剂在化学反应过程中会改变结构和性质。催化剂的初始状态可能是已知的,但总的来说,对催化剂在工作条件下如何随时间变化的了解要少得多。西华盛顿大学的玛格丽特·舍尔曼教授正在鉴定和研究催化剂的结构,同时催化剂正在工作。由Scheuermann教授领导的团队正在使用现有和新开发的技术来表征所生成的结构并了解其催化性能。这些发现使人们对催化剂结构的作用和意义有了深入的了解。参与该项目的本科生和硕士研究生正在发展研究技能,他们将在以后成为STEM劳动力的一员。在化学系化学结构、动力学和机理B(CSDM-B)项目的资助下,西华盛顿大学的玛格丽特·舍尔曼教授正在努力识别可能形成纳米颗粒的均相催化系统,表征颗粒,并试图区分颗粒是不活跃的分解产物、催化剂前/非循环物种,还是活性催化剂。这些研究集中在具有高度工程化的多齿配体的易还原的晚期金属,这些配体是已知的生物质脱氧、二氧化碳加氢/甲酸盐脱氢和有氧氧化反应的预催化剂。除了使用公认的测试来识别和评估假定的均相催化中的纳米颗粒,Scheuermann团队正在开发基于离心力和非反应性聚合物的新测试,以深入了解观察到的催化是由溶液化学(分子物种或小团簇)、表面(大宗固体或纳米颗粒)还是两者的组合最好地解释。该奖项反映了NSF的法定使命,并通过使用基金会的智力优势和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Emerging technologies such as the ability to convert carbon dioxide (CO2) into useful chemicals and the ability to use oxygen from the air as a reagent in chemical synthesis rely on catalysts that can speed up reaction rates and control which products are formed (selectivity). Catalysts can change structure and properties during a chemical reaction. The initial state of the catalyst may be known however, in general, far less is known about how catalysts might change over time under working conditions. Professor Margaret Scheuermann of Western Washington University is identifying and investigating catalysts structure while the catalyst is working. The team led by Professor Scheuermann is using both existing and newly developed techniques to characterize the resultant structures and understand their catalytic properties. The findings are giving insight into the role and significance of catalyst structure. The undergraduates and masters level students participating in this project are developing research skills that they will apply later as members of the STEM workforce. With funding from the Chemical Structure, Dynamics, and Mechanisms B (CSDM-B) Program of the Chemistry Division, Professor Margaret Scheuermann of Western Washington University is working to identify putative homogeneous catalytic systems in which nanoparticles are formed, characterize the particles, and attempt to discern whether the particles are an inactive decomposition product, a pre-catalyst/off-cycle species, or an active catalyst. The studies are focused on easily reduced late metals with highly engineered polydentate ligands that are known precatalysts for biomass deoxygenation, CO2 hydrogenation/formate dehydrogenation, and aerobic oxidation reactions. In addition to employing established tests for identifying and assessing nanoparticles in putative homogeneous catalysis, the Scheuermann group is developing new tests based on centrifugal forces and non-reactive polymers to gain insight as to whether the observed catalysis is best explained by solution chemistry (molecular species or small clusters), surfaces (bulk solid or nanoparticles), or a combination of the two.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
期刊论文(1)
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会议论文
DOI: 10.1021/acscatal.0c03180
发表时间: 2021-01-15
期刊: ACS CATALYSIS
影响因子: 12.9
作者: [Gitnes, Rachael M., Wang, Maggie, Scheuermann, Margaret L.]
通讯作者: Scheuermann, Margaret L.
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