Chun Hyungphil, Chaudhuri Phalguni, Weyhermüller Thomas, Wieghardt Karl
Max-Planck-Institut für Strahlenchemie, Stiftstrasse 34-36, D-45470 Mülheim an der Ruhr, Germany.
Inorg Chem. 2002 Feb 25;41(4):790-5. doi: 10.1021/ic010860w.
From the reaction of [Mn(III)(3)(micro-O)(micro-CH(3)CO(2))(6)]CH(3)CO(2) (manganese(III) acetate) and 2-anilino-4,6-di-tert-butylphenol (1:3) in methanol under anaerobic conditions, dark brown-black crystals of [Mn(III)(L(ISQ))(2)(L(AP))] (1) were obtained in approximately 30% yield. (L(AP))(-) represents the closed-shell o-aminophenolate(-) form of the above ligand, and (L(ISQ))(-) is the monoanionic pi radical form o-iminobenzosemiquinonate(-) (S(rad) = 1/2). Complex 1 can be deprotonated at the (L(AP))(-) ligand and one-electron-oxidized by air, yielding crystals of [Mn(IV)(L(ISQ))(2)(L(AP)-H)] (2), where (L(AP)-H)(2-) represents the closed-shell, dianionic o-amidophenolate(2-) form of the above ligand. The structures of 1 and 2 have been determined by X-ray crystallography at 100 K. The protonation and oxidation levels of the ligands and of the metal ions have been unequivocally established: both complexes contain two pi radical ligands, 1 contains a Mn(III) ion, and 2 contains a Mn(IV) ion. The spins of the radicals (S(rad) = 1/2) couple strongly antiferromagnetically with the d(4) and d(3) configuration of the Mn ions in 1 and 2, respectively, yielding the observed ground states of S = 1 for 1 and S = (1)/(2) for 2. This has been established by temperature-dependent susceptibility measurements (2-300 K) and S- and X-band EPR spectroscopy.
在厌氧条件下,[Mn(III)₃(μ - O)(μ - CH₃CO₂)₆]CH₃CO₂(醋酸锰(III))与2 - 苯胺基 - 4,6 - 二叔丁基苯酚(比例为1:3)在甲醇中反应,以约30%的产率得到深棕黑色晶体[Mn(III)(L(ISQ))₂(L(AP))](1)。(L(AP))⁻代表上述配体的闭壳层邻氨基酚盐⁻形式,(L(ISQ))⁻是单阴离子π自由基形式的邻亚氨基苯半醌⁻(S(rad) = 1/2)。配合物1可在(L(AP))⁻配体处去质子化,并被空气单电子氧化,生成[Mn(IV)(L(ISQ))₂(L(AP) - H)](2)的晶体,其中(L(AP) - H)²⁻代表上述配体的闭壳层二阴离子邻酰胺酚盐²⁻形式。1和2的结构已在100 K下通过X射线晶体学确定。配体和金属离子的质子化和氧化水平已明确确定:两种配合物均包含两个π自由基配体,1包含一个Mn(III)离子,2包含一个Mn(IV)离子。自由基的自旋(S(rad) = 1/2)分别与1和2中Mn离子的d⁴和d³构型强烈反铁磁耦合,分别产生观察到的1的基态S = 1和2的基态S = 1/2。这已通过变温磁化率测量(2 - 300 K)以及S波段和X波段EPR光谱确定。