Elucidation of Peptide Surface Structural Effects on the Catalytic Activity of Bio-Inspired Pd Nanomaterials
Elucidation of Peptide Surface Structural Effects on the Catalytic Activity of Bio-Inspired Pd Nanomaterials
批准号:
1157431
负责人:
Marc Knecht
金额:
$31.88万
依托单位:
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-07-19 至 2014-08-31
中文摘要
1033334 KnechtBio-inspired策略已成为制备和使用技术上重要的纳米材料作为催化剂的潜在方法,这些催化剂使用环保和节能的反应条件。因此,可使用这些技术开发可持续和有效的催化方法。基于肽的制造策略已成为合成方法的独特实例,因为序列是组合物特异性的,能够产生20 nm的纳米颗粒,并产生高度活性的最终结构。然而,这种活动的来源并不清楚。首席研究员马克Knecht通过肯塔基州大学研究基金会认为,一个独特的表面架构建立导致的活动。他打算阐明有关仿生Pd纳米颗粒催化剂的肽表面配体的原子级结构信息,以分离负责其在室温下在水中碳偶联反应的增强催化反应性的基序。 不幸的是,目前关于肽如何与催化剂颗粒表面配位的信息很少,因为这种相互作用可能是材料反应性增强的原因。PI认为,序列结合的方式使其暴露了显著部分的金属表面,从而发生反应。通过了解这种表面结构,PI将能够探索C-偶联的催化机制,随后可以利用它来扩展这些高效催化剂材料的反应谱。通过了解表面结构和序列相互作用的模式,肽和其他配体的合理设计可能会开发进一步增强的纳米催化架构。这是该项目更广泛的技术影响。这项工作有直接的潜力,影响能源效率和环境友好的催化方案,用于提供“绿色”化学合成方法。该提案的更广泛的推广影响采用了催化研究的视觉性质,作为一种机制,以提高肯塔基州农村学生对STEM学科的兴趣。PI建议使用本研究的视觉和丰富多彩的方面作为一种机制,以把握和保持学生的兴趣,希望增加他们未来的教育发展。从这个主题,学生接触到环保/节能催化,纳米技术和有机化学/分子可以发生。
英文摘要
1033334KnechtBio-inspired strategies have emerged as potential approaches to prepare and employ technologically important nanomaterials as catalysts that use eco-friendly and energy efficient reaction conditions. As a result, sustainable and efficient catalytic methods may be developed using these techniques. Peptide-based fabrication strategies have become unique examples of synthetic approaches as the sequences are composition specific, are able to generate nanoparticles of 20 nm, and result in final structures which are highly active. However, the source of this activity is not understood. Principal Investigator Marc Knecht through the University of Kentucky Research Foundation believes a unique surface architecture is established leading to the activity. He intends to elucidate atomic-level structural information concerning the peptide surface ligands of biomimetic Pd nanoparticulate catalysts to isolate the motifs responsible for their enhanced catalytic reactivity for carbon-coupling reactions in water at room temperature. Unfortunately, little information is presently known about how the peptides coordinate to the surface of the catalyst particle, as it is this interaction which is likely responsible for the enhanced reactivity of the materials. The PI believes that the sequence binds in such a manner that it exposes a significant fraction of the metallic surface, from which reactivity occurs. By understanding this surface structure, the PI will be able to explore the catalytic mechanism for C-coupling, which could subsequently be exploited to expand the reactivity spectrum of these efficient catalyst materials. By understanding the surface structure and mode of sequence interactions, the rational design of peptides and other ligands could be possible to develop further enhanced nanocatalytic architectures. This is the broader technical impact of the project. The work has immediate potential to impact energy efficient and environmentally friendly catalytic schemes for use in delivering "green" chemical synthetic methods.The broader outreach impact of the proposal employs the very visual nature of the catalytic research as a mechanism to increase interest in STEM disciplines in rural Kentucky students. The PI proposes to use the visual and colorful aspects of this research as a mechanism to grasp and maintain student interest in hopes of increasing their future educational development. From this topic, student exposure to eco-friendly/energy efficient catalysis, nanotechnology, and organic chemistry/molecules can occur.
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Collaborative Research: Designing Functional Bioligand Interfaces for Multifunctional Nanomaterials
-
批准号:2203862
-
项目类别:Standard Grant
-
资助金额:$33.0万
-
财政年份:2022
-
负责人:Marc Knecht
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依托单位:
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批准号:1560103
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项目类别:Standard Grant
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资助金额:$30.68万
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财政年份:2016
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批准号:1005982
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资助金额:$42.0万
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负责人:Marc Knecht
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依托单位:
Elucidation of Peptide Surface Structural Effects on the Catalytic Activity of Bio-Inspired Pd Nanomaterials
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批准号:1033334
-
项目类别:Continuing Grant
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资助金额:$36.49万
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财政年份:2010
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负责人:Marc Knecht
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依托单位:
国内基金
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