首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Structural diversity in manganese, iron and cobalt complexes of the ditopic 1,2-bis(2,2′-bipyridyl-6-yl)ethyne ligand and observation of epoxidation and catalase activity of manganese compounds
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Structural diversity in manganese, iron and cobalt complexes of the ditopic 1,2-bis(2,2′-bipyridyl-6-yl)ethyne ligand and observation of epoxidation and catalase activity of manganese compounds

机译:对位1,2-双(2,2'-联吡啶基-6-基)乙炔配体的锰,铁和钴配合物的结构多样性以及锰化合物的环氧化和过氧化氢酶活性的观察

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摘要

A ditopic 1,2-bis(2,2′-bipyridyl-6-yl)ethyne ligand, L, has been synthesized for the first time by consecutive Suzuki and Sonogashira coupling reactions either in a one- or two-step synthesis. Coordination of L with some first-row transition metals, Fe, Mn and Co showed a very rich structural diversity that can be obtained with this ligand. Reaction of L with Mn _(II)(OAc)_2 yielded a dimanganese(ii) complex, [Mn _2L(μ-OAc)_3]PF_6, (1) where the two somewhat inequivalent trigonal-bipyramidal Mn atoms separated by 3.381 ? are bridged by L and three acetate moieties. A similar reaction of L with Mn _(III)(OAc)_3 yielded a very different dimanganese complex [Mn_2L′(OH)(OAc)_2(DMF)_2]PF _6·DMF (2) where L′ is a E-1,2-bis(2,2′-bipyridyl- 6-yl)ethene fragment that was formed in situ. The L′ ligand bridges between the two Mn centers, despite its trans configuration, which leads to a very strained ethene bridging moiety. The Mn atoms are also bridged by two acetate ligands and a hydroxy group that bridges between the Mn atoms and the ethene fragment; DMF completes the octahedral coordination around each Mn atom which are separated by 3.351 ?. A comproportionation reaction of L with Mn_(II)(OAc)_2 and n-Bu_4NMnO_4 yielded a tetramanganese compound, [Mn_4(μ_3-O)_2(OAc) _4(H_2O)_2L_2](PF_6) _2·2CH_3CN (3). Compound 3 has a dimer of dimers structure of the tetranuclear Mn core that consists of binuclear [Mn _2O(OAc)_2L]~+ fragment and a PF_6 anion. BVS calculations indicate that 3 is a mixed-valent 2Mn~(II) plus 2Mn~(III) compound where two [Mn~(II)_2O(OAc) _2L]~+ fragments are held together by Mn~(III)-O inter-fragment linkers which have a distorted octahedral geometry. The Mn atoms in the [Mn_2O(OAc)_2L]~+ fragments have a capped square-pyramid configuration where an aqua ligand is capped on one of the faces. Although the aqua ligand is well within a bonding distance to a carbon atom of the proximal ethyne bridge, there does not appear to be an oxygen-carbon bond formation, rather the ligand is constrained in this position, as deduced by the observation that the bond lengths and angles of the ligand are essentially the same as those for the free ligand, L. Reaction of L with perchlorate or triflate salts of Fe(ii), Mn(ii) and Co(ii) in dry acetonitrile yielded binuclear triple helicate structures (2:3 metal to L ratios) [Fe_2L _3](CF_3SO_3)_4·CH_3CN (4), [Mn_2L_3](ClO_4)_4·1. 7CH_3CN·1.65EtOEt (5) and [Co_2L_3] (ClO_4)_4·2CH_3CN·2EtOEt (6) where each M(ii) center with a slightly distorted octahedral geometry is bridged by three of the ditopic ligands. The M-M distances varied; 5.961 ? (Mn), 6.233 ? (Co) 6.331 ? (Fe). Reaction of L with Co(ClO _4)_2·6H_2O in wet acetonitrile yielded a dicobalto(iii) compound, [Co_2L′_3(O) _2](ClO_4)_2·H2O (7), with two types of L′ fragments; one bridging between the two Co centers and two non-bridging ligands, each bonded to a Co atom via one bipyridyl group where the other is non-bonding. The octahedral coordination sphere around each Co atom is completed by the formation of a cobalt-carbon bond from the two carbon atoms of the ethene moiety of the bridging ligand and by a hydroxy moiety that is also bonded to the ethene group of the non-bridging ligand. Reaction of L with Co(ClO_4)_2·6H_2O in dry acetonitrile in the presence of Et3N yielded the tetracobalto(ii) complex {[Co _2L_4(OH)_4](ClO_4)_4} _2 (8) with a unique twisted square configuration of cobalt ions with Co-Co distances of 3.938 to 4.131 ?. In addition to the L bridging ligand the Co atoms are linked by hydroxy moieties. Some preliminary catalytic studies showed that the Mn compounds 1 and 2 were active (high yield within 3 min) for alkene epoxidation with peracetic acid and hydrogen peroxide dismutation (catalase activity).
机译:通过一个或两个步骤的连续Suzuki和Sonogashira偶联反应,首次合成了对位的1,2-双(2,2'-联吡啶基-6-基)乙炔配体L。 L与一些第一行过渡金属Fe,Mn和Co的配位表明,利用该配体可以获得非常丰富的结构多样性。 L与Mn _(II)(OAc)_2反应生成二锰(ii)配合物[Mn _2L(μ-OAc)_3] PF_6,(1)其中两个不等价的三角-双锥型Mn原子隔开3.381?通过L和三个乙酸酯部分桥接。 L与Mn _(III)(OAc)_3的类似反应产生了非常不同的二锰配合物[Mn_2L'(OH)(OAc)_2(DMF)_2] PF _6·DMF(2),其中L'是E-原位形成的1,2-双(2,2'-联吡啶基-6-基)乙烯片段。尽管具有反式构型,但L'配体在两个Mn中心之间架桥,导致乙烯桥连部分非常易拉紧。 Mn原子也被两个乙酸酯配体和一个在Mn原子和乙烯片段之间桥接的羟基桥接。 DMF完成每个由3.351?隔开的Mn原子周围的八面体配位。 L与Mn_(II)(OAc)_2和n-Bu_4NMnO_4的配位反应产生四锰化合物[Mn_4(μ_3-O)_2(OAc)_4(H_2O)_2L_2](PF_6)_2·2CH_3CN(3)。化合物3具有由双核[Mn _2O(OAc)_2L] +片段和PF_6阴离子组成的四核Mn核的二聚体结构的二聚体。 BVS计算表明3是2Mn〜(II)+ 2Mn〜(III)的混合价化合物,其中两个[Mn〜(II)_2O(OAc)_2L]〜+片段通过Mn〜(III)-O结合在一起八面体几何形状失真的片段间连接子。 [Mn_2O(OAc)_2L]〜+片段中的Mn原子具有封端的方形金字塔构型,其中水配体封端在其中一个面上。尽管水配体在与近端乙炔桥碳原子的键合距离之内,但似乎没有氧碳键的形成,相反,该配体被限制在该位置,如观察到的键合配体的长度和角度与游离配体L的长度和角度基本相同。L与干乙腈中的Fe(ii),Mn(ii)和Co(ii)的高氯酸盐或三氟甲磺酸盐反应生成双核三螺旋结构(2:3的金属与L的比例)[Fe_2L _3](CF_3SO_3)_4·CH_3CN(4),[Mn_2L_3](ClO_4)_4·1。 7CH_3CN·1.65EtOEt(5)和[Co_2L_3](ClO_4)_4·2CH_3CN·2EtOEt(6),其中每个M(ii)中心的八面体几何形状略有扭曲,由三个对位配体桥接。 M-M距离各不相同; 5.961? (Mn)6.233? (合)6.331? (铁) L与湿乙腈中的Co(ClO _4)_2·6H_2O反应生成二钴(iii)化合物[Co_2L'_3(O)_2](ClO_4)_2·H2O(7),具有两种类型的L'片段;一个桥接在两个Co中心和两个非桥接配体之间,每个配体通过一个联吡啶基键合至Co原子,另一个未键合。通过从桥联配体的乙烯部分的两个碳原子形成钴-碳键,以及通过还与非桥联的乙烯基团键合的羟基,完成围绕每个Co原子的八面体配位球配体。在Et3N存在下,L与无水乙腈中的Co(ClO_4)_2·6H_2O反应生成四钴(ii)络合物{[Co _2L_4(OH)_4](ClO_4)_4} _2(8)具有独特的扭曲方形构型Co-Co距离为3.938至4.131?的钴离子的数量。除L桥联配体外,Co原子还通过羟基部分连接。一些初步的催化研究表明,Mn化合物1和Mn 2对过氧乙酸烯属环氧化和过氧化氢歧化(过氧化氢酶活性)具有活性(3分钟内高收率)。

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