首页> 外文OA文献 >Versatile Reactivity of MnII Complexes in Reactions with N-Donor Heterocycles: Metamorphosis of Labile Homometallic Pivalates vs. Assembling of Endurable Heterometallic Acetates
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Versatile Reactivity of MnII Complexes in Reactions with N-Donor Heterocycles: Metamorphosis of Labile Homometallic Pivalates vs. Assembling of Endurable Heterometallic Acetates

机译:MnII复合物的多功能反应性与N-供体杂环的反应:不稳定型血阶的变态与耐耐久性的杂核醋酸盐组装

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摘要

Reaction of 2,2′-bipyridine (2,2′-bipy) or 1,10-phenantroline (phen) with [Mn(Piv)2(EtOH)]n led to the formation of binuclear complexes [Mn2(Piv)4L2] (L = 2,2′-bipy (1), phen (2); Piv- is the anion of pivalic acid). Oxidation of 1 or 2 by air oxygen resulted in the formation of tetranuclear MnII/III complexes [Mn4O2(Piv)6L2] (L = 2,2′-bipy (3), phen (4)). The hexanuclear complex [Mn6(OH)2(Piv)10(pym)4] (5) was formed in the reaction of [Mn(Piv)2(EtOH)]n with pyrimidine (pym), while oxidation of 5 produced the coordination polymer [Mn6O2(Piv)10(pym)2]n (6). Use of pyrazine (pz) instead of pyrimidine led to the 2D-coordination polymer [Mn4(OH)(Piv)7(µ2-pz)2]n (7). Interaction of [Mn(Piv)2(EtOH)]n with FeCl3 resulted in the formation of the hexanuclear complex [MnII4FeIII2O2(Piv)10(MeCN)2(HPiv)2] (8). The reactions of [MnFe2O(OAc)6(H2O)3] with 4,4′-bipyridine (4,4′-bipy) or trans-1,2-(4-pyridyl)ethylene (bpe) led to the formation of 1D-polymers [MnFe2O(OAc)6L2]n·2nDMF, where L = 4,4′-bipy (9·2DMF), bpe (10·2DMF) and [MnFe2O(OAc)6(bpe)(DMF)]n·3.5nDMF (11·3.5DMF). All complexes were characterized by single-crystal X-ray diffraction. Desolvation of 11·3.5DMF led to a collapse of the porous crystal lattice that was confirmed by PXRD and N2 sorption measurements, while alcohol adsorption led to porous structure restoration. Weak antiferromagnetic exchange was found in the case of binuclear MnII complexes (JMn-Mn = −1.03 cm−1 for 1 and 2). According to magnetic data analysis (JMn-Mn = −(2.69 ÷ 0.42) cm−1) and DFT calculations (JMn-Mn = −(6.9 ÷ 0.9) cm−1) weak antiferromagnetic coupling between MnII ions also occurred in the tetranuclear {Mn4(OH)(Piv)7} unit of the 2D polymer 7. In contrast, strong antiferromagnetic coupling was found in oxo-bridged trinuclear fragment {MnFe2O(OAc)6} in 11·3.5DMF (JFe-Fe = −57.8 cm−1, JFe-Mn = −20.12 cm−1).
机译:2,2'-硼吡啶(2,2'-Bipy)或1,10-吩丙烯碱(Phen)的反应与[Mn(PIV)2(EtOH)] n导致形成二核复合物[MN2(PIV)4L2的形成](l = 2,2'-bipy(1),phen(2); piv-是持久性酸的阴离子)。通过空气氧氧化1或2导致四核MNII / III络合物的形成[Mn4O2(PIV)6L2](L = 2,2'-Bipy(3),Phen(4))。在用嘧啶(Pym)的[Mn(PIV)2(EtOH)] N的反应中形成己核络合物[Mn6(OH)2(PIV)10(PYM)4](5),而5制作5的氧化配位聚合物[MN6O2(PIV)10(PYM)2] N(6)。使用吡嗪(PZ)代替嘧啶导致2D配位聚合物[MN4(OH)(PIV)7(μ2-PZ)2] N(7)。 [Mn(PIV)2(EtOH)] N与FECL3的相互作用导致己核复合物[MnII4FeIII2O2(PIV)10(MECN)2(HPIV)2](8)的形成。 [MnFe 2 O(OAC)6(H 2 O)3]用4,4'-硼吡啶(4,4'-Bipy)或反式-1,2-(4-吡啶基)乙烯(BPE)的反应导致了形成1d-聚合物[MnFe 2 O(OAC)6L2] N·2NDMF,其中L = 4,4'-Bipy(9·2DMF),BPE(10·2DMF)和[MnFe 2 O(OAC)6(BPE)(DMF)] n ·3.5ndmf(11·3.5dmf)。通过单晶X射线衍射表征所有复合物。脱溶解11·3.5dmf导致通过PXRD和N 2吸附测量确认的多孔晶格的塌陷,而醇吸附导致多孔结构修复。在双核MNII配合物(JMN-MN = -1.03cm -1持续1和2)的情况下发现了弱的反铁磁交换。根据磁性数据分析(JMN-Mn = - (2.69÷0.42)CM-1)和DFT计算(JMN-MN = - (6.9÷0.9)cm-1)MNII离子之间的弱反铁磁性耦合也发生在四核{ 2D聚合物的Mn4(OH)(PIV)7}单元7.相反,在11·3.5DMF(JFE-Fe = -57.8厘米中,在氧桥桥的三核片段中发现了强的反铁磁性偶联。(JFE-Fe = -57.8厘米-1,JFE-Mn = -20.12 cm-1)。

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