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RUI:CAS: New Ligand Platforms for the Synthesis and Study of High-Spin Iron(I) Dinitrogen Complexes

RUI:CAS: New Ligand Platforms for the Synthesis and Study of High-Spin Iron(I) Dinitrogen Complexes
RUI:CAS:用于合成和研究高自旋铁(I)二氮配合物的新配体平台
批准号:
1954883
负责人:
Paul Fischer
金额:
$22.46万
依托单位:
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:
已结题
起止时间:
2020-09-01 至 2024-08-31

项目摘要

项目成果

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中文摘要
翻译
通过这一奖项,美国国家科学基金会化学部化学合成计划支持Macalester学院化学系Paul J.Fischer教授开发与氮气结合的新铁化合物的研究。氮气占空气的近80%,对大多数化学反应都是惰性的。由于这种惰性,氮不能通过还原化学作用进入化肥和药品中富含氮的有用成分。该项目的目标是发现提高氮气反应性的新方法。具体的概念包括将氮气转化为含铁的化合物。事实上,费舍尔的研究项目已经确定了一类与铁结合的有机化合物,使其能够激活气态氮。这项研究是由费舍尔教授和本科生在一个促进多样性的环境中进行的,这种环境通过纳入女性和化学专业代表性较低的群体成员来促进多样性。通过这项研究,该项目正在为高级有机化学和无机化学的参与者提供实践培训。学生同事准备在学术界、工业界或联邦实验室从事STEM(科学、技术、工程和数学)职业。该项目有助于开发催化/化学计量反应来操纵铁-氮化物,以探索发现氮气功能化的新途径的“重大挑战”。目标是一系列末端高自旋铁(I)氮化合物。这些新的络合物允许系统地研究在三角配位和调制的弱配位场中影响铁结合的氮配体的变量。将研究各种支持配体,特别强调吡唑基序。特别注意了新络合物的还原电位。本项目还将探索末端铁(I)氮配合物与抗磁和顺磁配体取代氮的反应性。有机自由基与末端二氮配体的加成反应将作为有机氮产物的一种途径进行研究。铁配位末端二氮配体通过自由基加成的官能化将代表铁介导的二氮反应的一条令人兴奋的新途径。该研究项目吸引了来自不同校园社区的参与者,为他们提供实验室操作方面的实际动手培训。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
With this award, the Chemical Synthesis Program of the NSF Division of Chemistry is supporting the research of Professor Paul J. Fischer in the Department of Chemistry at Macalester College to develop new iron compounds that bind nitrogen gas. Comprising nearly 80% of air, nitrogen gas is inert toward most chemical reactions. Because of this inertness, nitrogen resists incorporation by reductive chemistry into useful nitrogen-rich components of fertilizers and pharmaceuticals. The goal of this project is to discover new approaches to enhance the reactivity of nitrogen. The specific concept involves converting nitrogen gas into compounds containing iron. Indeed, Fischer’s research program has identified a family of organic compounds that bind iron, allowing it to activate gaseous nitrogen. The research is being conducted by Professor Fischer and undergraduate students in an environment that fosters diversity by including women and members of groups underrepresented in chemistry. Through this research, the project is providing hands-on training to participants in advanced organic and inorganic chemistry. Student coworkers are prepared for pursuing STEM (science, technology, engineering, and mathematics) careers in academia, industry, or federal laboratories.This project contributes to the "grand challenge" of the development of catalytic/stoichiometric reactions for the manipulation of iron-dinitrogen complexes in a quest to uncover new pathways for N2 functionalization. A family of terminal high-spin iron(I) dinitrogen complexes are targeted. These new complexes allow systematic study of variables affecting the iron-bound dinitrogen ligands in trigonally coordinated and modulated weak ligand fields. A variety of supporting ligands will be examined, with particular emphasis on the pyrazolate motif. Particular attention is paid to the reduction potentials of the new complexes. This project will also explore the reactivity of terminal iron(I) dinitrogen complexes with respect to dinitrogen substitution with diamagnetic and paramagnetic ligands. Additions of organic radicals to terminal dinitrogen ligands will be investigated as one pathway to organic nitrogen products. The functionalization of an iron-coordinated terminal dinitrogen ligand by radical addition would represent an exciting new pathway for iron-mediated dinitrogen reactivity. The research program draws participants from a diverse campus community, providing them with practical, hands-on training in laboratory operations.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: 10.1039/d3dt00735a
发表时间: 2023-04-04
期刊: DALTON TRANSACTIONS
影响因子: 4
作者: [Fischer, Paul J., Roe, Charley B., Young Jr, Victor G.]
通讯作者: Young Jr, Victor G.
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