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Coordination complexes of methimazole with copper: Controlling redox reactions and sulfur extrusion

机译:铜甲基唑的配位复合物:控制氧化还原反应和硫挤压

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Sulfur-containing imidazole thiones are of interest for their redox chemistry and tendency to form disulfide bonds reminiscent of biologically active disulfides. Treating copper(II) with redox-active methimazole in the presence of oxygen results in concomitant copper reduction and formation of methimazole disulfide, and ultimately, extrusion of one of the sulfur atoms. Reaction conditions, including stoichiometry, presence of oxygen, and redox state of the metal ion, were varied to examine the mechanistic details that lead to the sulfur extrusion. Six unique products are reported: [Cu(kappa(N,N)-MMIMS)(2)(H2O)(2)](HSO4)(2), [Cu(kappa(N,N)-MMIMS)(2)(H2O)][CH3SO4][HSO4] [H2O], [Cu(kappa(N,N)-MMIMS)(2)(H2O)](CH3SO4)(2), [Cu(kappa(N,N)-MMIMS)(kappa(O,O)-SO4)(CH3OH)], [Cu(kappa(N,N)-MMIMS)(kappa(O,O)-SO4) (DMSO)]center dot 0.5 DMSO, and [Cu(mu,kappa(O,O,O)-SO4)(kappa(N,N)-MMIMS)](n)[CH3CN] (MMIMS = bis(1-methylimidazol-2-yl)sulfide). In all structures, the HSO4- and CH3SO4- counterions are generated in situ. EPR analysis of the reaction as it proceeds indicates initial formation of a four-coordinate Cu2+-S complex that shifts to square planar or octahedral Cu2+-N coordination over the course of the reaction. Formation of the thiyl radical is also observed by EPR analysis using DMPO as a spin trap. Together, these results establish a complete mechanism for sulfur extrusion that proceeds through copper-methimazole binding and redox, superoxide formation, and nucleophilic attack of water or methanol on sulfur, and subsequent nucleophilic aromatic substitution to yield the sulfur-extruded product. Understanding this mechanism lays the foundation for catalyst development for desulfurization and sulfur-containing polymerization reactions.
机译:含硫的咪唑目,它们对其氧化还原化学和形成二硫键使生物活性二硫化物的倾向感兴趣。在氧存在下用氧化还原活性甲基咪唑处理铜(II)导致铜减少和形成甲基唑二硫化物,最终挤出其中一种硫原子。改变反应条件,包括化学计量,氧的存在和金属离子的氧化还原状态,以检查导致硫挤出的机械细节。报道六种独特的产品:[Cu(κ(n,n)-mmmms)(2)(2)(2)(2)(2)(2),[Cu(kappa(n,n)-mmms)(2) (H 2 O)] [H2O4] [H 2 O],[Cu(κ(n,N)-mmms)(2)(2)(H 2 O)](2)(2)(2),[Cu(κ(kappa(n,n) - MMIMS)(Kappa(O,O)-SO4)(CH 3 OH)],[Cu(κ(n,n)-mmms)(κ(o,o)-SO4)(DMSO)]中心点0.5 DMSO,以及[ Cu(mu,kappa(o,o,o)-so4)(kappa(n,n)-mmmms)](n)[ch 3cn](mmims =双(1-甲基咪唑-2-基)硫化物)。在所有结构中,HSO4和CH3SO4抗衡离子原位产生。 EPR在进行中的反应分析,表明在反应过程中初始形成四坐标Cu2 + -S复合物,其转向方形平面或八面体Cu2 + -N协调。通过EPR分析使用DMPO作为旋转陷阱,也观察到硫基的形成。这些结果共同建立了硫挤出的完整机制,所述硫挤出通过铜 - 甲基唑结合和氧化还原,超氧化物形成和水或甲醇对硫的亲核侵蚀,以及随后的亲核芳族取代,得到硫挤出产物。了解该机制为脱硫和含硫聚合反应的催化剂开发奠定了基础。

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