Wang Yue, Singh Shweta, Meyer Andreas, Dechert Sebastian, Gupta Sandeep K, Demeshko Serhiy, Krewald Vera, Meyer Franc
Institute of Inorganic Chemistry, University of Göttingen, Tammannstrasse 4, D-37077 Göttingen, Germany.
Fachbereich Chemie, Quantenchemie, Technische Universität Darmstadt, Peter-Grünberg-Str. 4, D-64287 Darmstadt, Germany.
JACS Au. 2025 Jun 20;5(7):3104-3114. doi: 10.1021/jacsau.5c00129. eCollection 2025 Jul 28.
Preorganized bimetallic complexes could open up new avenues of cooperative substrate activation and transformation of inert dinitrogen (N). While the most common structural motif in synthetic dinuclear N complexes is a linear M-N-N-M unit, only a few examples of bent geometries reminiscent of the proposed N binding modes in the Haber-Bosch process or the M-cluster of Nitrogenase have been reported. Exploiting the structural constraints imposed by a compartmental pyrazolato/β-diketiminato hybrid ligand platform (L), we here report a series of dicobalt-(I) complexes [LCo(N)] hosting N within the preorganized bimetallic cleft with extremely acute Co-Ct-Co angles of around 123.5° (Ct is the N centroid). A detailed electronic structure analysis using wave function methods shows that the ground state of diamagnetic [LCo(N)] may not be a simple closed-shell singlet, but rather of multiconfigurational nature subject to spin-orbit coupling. Co-N-N-Co bending significantly decreases overlap of metal d-orbitals with the in-plane p-(N) orbitals, yet the N substrate is substantially more activated ( ≈ 1900 cm) than in most Co complexes with end-on bound N or linear Co-N-N-Co arrangement; no coactivation by the alkali cation K is observed for [LCo(N)]. Reversible oxidation gives an unusual mixed-valent complex [LCoCo(N)] in which the highly bent Co-N-N-Co core is retained. [LCo(N)]-[K-(THF)] is found to cocrystallize with KBEtH, indicating that the putative [LCo(NH)] has a very low hydricity. In presence of KC and MeSiCl, complex [LCo(N)] serves as (pre)-catalyst for the reductive silylation of N into N-(SiMe). We discuss the implications of the highly exposed, "-bent" N unit for onward reactivity.
预组织的双金属配合物可能开辟协同底物活化和惰性二氮(N₂)转化的新途径。虽然合成双核N₂配合物中最常见的结构基序是线性M-N₂-N-M单元,但仅有少数弯曲几何结构的例子被报道,这些结构让人联想到哈伯-博施过程中提出的N₂结合模式或固氮酶的M-簇。利用由间隔吡唑啉/β-二酮亚胺杂化配体平台(L)施加的结构限制,我们在此报告了一系列二钴(I)配合物[LCo(N₂)],其在预组织的双金属裂隙中容纳N₂,Co-Ct-Co角极为尖锐,约为123.5°(Ct为N₂质心)。使用波函数方法进行的详细电子结构分析表明,抗磁性[LCo(N₂)]的基态可能不是简单的闭壳单重态,而是受自旋-轨道耦合影响的多组态性质。Co-N₂-N-Co弯曲显著降低了金属d轨道与面内p(N₂)轨道的重叠,但N₂底物的活化程度(ν ≈ 1900 cm⁻¹)比大多数端基结合N₂的钴配合物或线性Co-N₂-N-Co排列的情况要高得多;对于[LCo(N₂)],未观察到碱金属阳离子K的共活化作用。可逆氧化产生一种不寻常的混合价配合物[LCoCo(N₂)],其中高度弯曲的Co-N₂-N-Co核心得以保留。发现[LCo(N₂)]·[K⁺·(THF)]与KBH₄Et₃共结晶,表明假定的[LCo(NH₃)]具有非常低的氢负离子转移能力。在KCl和Me₃SiCl存在下,配合物[LCo(N₂)]作为将N₂还原硅化为N(SiMe₃)₂的(预)催化剂。我们讨论了高度暴露的“弯曲”N₂单元对后续反应性的影响。