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首页> 外文期刊>Dalton transactions: An international journal of inorganic chemistry >Ligand rotation in [Ar(R)N](3)M-N-2-M '[N(R)Ar](3) (M, M ' = Mo-III, Nb-III; R = Pr-i and Bu-t) dimers
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Ligand rotation in [Ar(R)N](3)M-N-2-M '[N(R)Ar](3) (M, M ' = Mo-III, Nb-III; R = Pr-i and Bu-t) dimers

机译:[Ar(R)N](3)MN-2-M'[N(R)Ar](3)中的配体旋转(M,M'= Mo-III,Nb-III; R = Pr-i和Bu -t)二聚体

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Earlier calculations on the model N-2-bridged dimer (mu-N-2)-{Mo[NH2]3}2 revealed that ligand rotation away from a trigonal arrangement around the metal centres was energetically favourable resulting in a reversal of the singlet and triplet energies such that the singlet state was stabilized 13 kJ mol 1 below the D-3d triplet structure. These calculations, however, ignored the steric bulk of the amide ligands N(R)Ar (R = Pr-i and Bu-t, Ar = 3,5-C6H3Me2) which may prevent or limit the extent of ligand rotation. In order to investigate the consequences of steric crowding, density functional calculations using QM/MM techniques have been performed on the (MoMoIII)-Mo-III and (MoNbIII)-Nb-III intermediate dimer complexes (mu-N-2)-{Mo[N(R)Ar](3)}(2) and [Ar(R)N](3)Mo-(mu-N-2)-Nb[N(R)Ar](3) formed when three-coordinate Mo[N(R)Ar](3) and Nb[N(R)Ar](3) react with dinitrogen. The calculations indicate that ligand rotation away from a trigonal arrangement is energetically favourable for all of the ligands investigated and that the distortion is largely electronic in origin. However, the steric constraints of the bulky amide groups do play a role in determining the final orientation of the ligands, in particular, whether the ligands are rotated at one or both metal centres of the dimer. Analogous to the model system, QM/MM calculations predict a singlet ground state for the (mu-N-2)-{Mo[N(R)Ar](3)}(2) dimers, a result which is seemingly at odds with the experimental triplet ground state found for the related (mu-N-2)-{Mo[N(Bu-t)Ph](3)}(2) system. However, QM/MM calculations on the (mu-N-2)-{Mo[N(Bu-t)Ph](3)}(2) dimer reveal that the singlet triplet gap is nearly 20 kJ mol(-1) smaller and therefore this complex is expected to exhibit very different magnetic behaviour to the (mu-N-2)-{Mo[N(R)Ar](3)}(2) system.
机译:对模型N-2-桥二聚体(mu-N-2)-{Mo [NH2] 3} 2的早期计算显示,配体旋转远离围绕金属中心的三角排列是有利的,从而导致了单峰的逆转和三重态能量,使得单重态在D-3d三重态结构下方稳定了13 kJ mol 1。然而,这些计算忽略了酰胺配体N(R)Ar(R = Pr-1和Bu-t,Ar = 3,5-C6H3Me2)的空间体积,这可能阻止或限制了配体的旋转程度。为了研究空间拥挤的后果,已对(MoMoIII)-Mo-III和(MoNbIII)-Nb-III中间二聚体复合物(mu-N-2)-{ Mo [N(R)Ar](3)}(2)和[Ar(R)N](3)Mo-(mu-N-2)-Nb [N(R)Ar](3)坐标Mo [N(R)Ar](3)和Nb [N(R)Ar](3)与二氮反应。计算表明,对于所有研究的配体而言,配体旋转远离三角形排列在能量上都是有利的,并且该变形在很大程度上是电子起源的。然而,庞大的酰胺基团的空间约束确实在确定配体的最终取向中起作用,特别是,配体是否在二聚体的一个或两个金属中心旋转。与模型系统类似,QM / MM计算可预测(mu-N-2)-{Mo [N(R)Ar](3)}(2)二聚体的单线基态,这一结果看似有些矛盾并找到相关(mu-N-2)-{Mo [N(Bu-t)Ph](3)}(2)系统的实验三重态基态。但是,对(mu-N-2)-{Mo [N(Bu-t)Ph](3)}(2)二聚体的QM / MM计算显示,单重态三重态间隙接近20 kJ mol(-1)较小,因此预期该复合物表现出与(mu-N-2)-{Mo [N(R)Ar](3)}(2)系统非常不同的磁行为。

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