揭示等温杂原子取代非血红素铁配合物中绿泥石氧化途径

IF 3.3 Q2 CHEMISTRY, MULTIDISCIPLINARY
Limashree Sahoo, Payal Panwar, Chivukula V. Sastri* and Sam P. de Visser*, 
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引用次数: 0

摘要

已知催化剂的第一配位球在反应机制中起着至关重要的作用,但赤道配体如何影响反应性的细节仍然未知。非血红素铁金属酶中连接到铁中心赤道位置的杂原子调节结构和反应性。为了研究赤道杂原子取代对亚氯酸盐氧化的影响,我们合成了三种新型的单核非血红素铁(II)配合物,并对其进行了表征。这些配合物在比斯匹啶配体框架的赤道位置有系统的取代,其中吡啶基团被NMe2、SMe和OMe取代。研究了三种铁(II) -比斯必啶配合物作为氧原子转移的模型途径在亚氯酸盐氧化反应中的作用。氯氧离子,其卤化物的氧化态范围从+1到+7,有许多应用,但会污染水体,这需要迫切的环境修复。亚氯酸盐是二氧化氯的一种常见前体,由于二氧化氯具有优异的抗菌活性而引起人们的特别关注。此外,它的产生导致水处理中有害副产品的减少。在这里,我们证明了这些配合物可以在室温和pH 5.0的醋酸缓冲液中由亚氯酸盐产生二氧化氯,通过原位形成高价铁(IV) -氧中间体氧化亚氯酸盐。本研究确定了铁周围配位球的细微变化如何影响反应性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Unraveling Chlorite Oxidation Pathways in Equatorially Heteroatom-Substituted Nonheme Iron Complexes

The first-coordination sphere of catalysts is known to play a crucial role in reaction mechanisms, but details of how equatorial ligands influence the reactivity remain unknown. Heteroatom ligated to the equatorial position of iron centers in nonheme iron metalloenzymes modulates structure and reactivity. To investigate the impact of equatorial heteroatom substitution on chlorite oxidation, we synthesized and characterized three novel mononuclear nonheme iron(II) complexes with a pentadentate bispidine scaffold. These complexes feature systematic substitutions at the equatorial position in the bispidine ligand framework where the pyridine group is replaced with NMe2, SMe, and OMe groups. The three iron(II)–bispidine complexes were subjected to studies in chlorite oxidation reactions as a model pathway for oxygen atom transfer. Chlorine oxyanions, which have the halide in an oxidation state ranging from +1 to +7, have numerous applications but can contaminate water bodies, and this demands urgent environmental remediation. Chlorite, a common precursor to chlorine dioxide, is of particular interest due to the superior antimicrobial activity of chlorine dioxide. Moreover, its generation leads to fewer harmful byproducts in water treatment. Here, we demonstrate that these complexes can produce chlorine dioxide from chlorite in acetate buffer at room temperature and pH 5.0, oxidizing chlorite through the in situ formation of high-valent iron(IV)–oxo intermediates. This study establishes how subtle changes in the coordination sphere around iron can influence the reactivity.

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来源期刊
ACS Organic & Inorganic Au
ACS Organic & Inorganic Au 有机化学、无机化学-
CiteScore
4.10
自引率
0.00%
发文量
0
期刊介绍: ACS Organic & Inorganic Au is an open access journal that publishes original experimental and theoretical/computational studies on organic organometallic inorganic crystal growth and engineering and organic process chemistry. Short letters comprehensive articles reviews and perspectives are welcome on topics that include:Organic chemistry Organometallic chemistry Inorganic Chemistry and Organic Process Chemistry.
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