Wen Qingqing, Feng Bin, Chen Yaofeng
Spin-X Institute, School of Chemistry and Chemical Engineering, State Key Laboratory of Luminescent Materials and Devices, Guangdong-Hong Kong-Macao Joint Laboratory of Optoelectronic and Magnetic Functional Materials, South China University of Technology, Guangzhou 510641, P. R. China.
State Key Laboratory of Organometallic Chemistry, Shanghai Institute of Organic Chemistry, University of Chinese Academy of Sciences, Chinese Academy of Sciences, 345 Lingling Road, Shanghai 200032, P. R. China.
Acc Chem Res. 2023 Dec 5;56(23):3343-3357. doi: 10.1021/acs.accounts.3c00429. Epub 2023 Nov 14.
ConspectusAs phosphorus analogues of alkylidene (or carbene) and imido (or nitrene) complexes, phosphinidene complexes have received great attention not only for their fundamental scientific merits but also for their ability to build new phosphorus-containing molecules. A large number of phosphinidene complexes in bridging, mononuclear, or terminal coordination modes have been synthesized, and their reactivity has been extensively explored. However, the synthesis of rare-earth metal (scandium, yttrium, and lanthanide metal) phosphinidene complexes lagged behind the transition metal and actinide congeners for decades. Rare-earth metal ions are among the hardest Lewis acids, whereas phosphinidene ligands are soft Lewis bases; rare-earth metal-phosphinidene coordination is thus mismatched based on the Pearson's HSAB principle. The bridging rare-earth metal phosphinidene complexes were not reported until 2008, and the synthesis of the mononuclear and terminal species is even more challenging, which has only recently been achieved.Our group reported a bis(-phosphinidene)dineodymium complex in 2008. In the following >10 years, we have been pursuing the terminal rare-earth metal phosphinidene complexes. Due to the high instability of rare-earth metal-phosphorus multiple bonds, the synthesis and stabilization of these complexes are extremely difficult. Finally, by using suitable phosphinidene ligands and supporting ligands, we obtained the first mononuclear rare-earth metal phosphinidene complex in 2018 and the first terminal rare-earth metal phosphinidene complex in 2020. In these more than ten years of research, we have also found some interesting reactivity of the rare-earth metal phosphinidene complexes. The rare-earth metal bridging phosphinidene complexes can act as two-electron reductants based on the oxidative coupling of two phosphinidene ligands into a diphosphene ligand. The mononuclear rare-earth metal phosphinidene complexes catalyze the hydrogenation of terminal alkenes under mild conditions, and the joint experimental/DFT studies indicate that the hydrogenation reaction proceeds in a 1,2-addition/elimination mechanism rather than the common σ-bond metathesis mechanism. These reactivities are new and important for the rare-earth metal complexes. In addition, the ligand design in our study may contribute to the synthesis of rare-earth metal-arsenic multiple bonding complexes and alkaline-earth metal-phosphorus multiple bonding complexes, which have not yet been realized. Herein, we present an account of our investigations into rare-earth metal phosphinidene complexes, a trip from bridging one to terminal one. To give the readers an overall image of the development of the rare-earth metal phosphinidene complexes, some findings from other researchers are also included.
综述
作为亚烷基(或卡宾)和亚氨基(或氮宾)配合物的磷类似物,磷烯配合物不仅因其基本的科学价值,还因其构建新型含磷分子的能力而备受关注。大量以桥联、单核或端基配位模式存在的磷烯配合物已被合成,并且它们的反应活性也得到了广泛研究。然而,稀土金属(钪、钇和镧系金属)磷烯配合物的合成比过渡金属和锕系同类物滞后了几十年。稀土金属离子是最难的路易斯酸之一,而磷烯配体是软路易斯碱;因此,基于皮尔逊的软硬酸碱理论,稀土金属 - 磷烯配位不匹配。直到2008年才报道了桥联稀土金属磷烯配合物,而单核和端基物种的合成更具挑战性,直到最近才得以实现。
我们小组在2008年报道了一种双( - 磷烯)二钕配合物。在接下来的十多年里,我们一直在研究端基稀土金属磷烯配合物。由于稀土金属 - 磷多重键的高度不稳定性,这些配合物的合成和稳定化极其困难。最终,通过使用合适的磷烯配体和辅助配体,我们在2018年获得了首个单核稀土金属磷烯配合物,并在2020年获得了首个端基稀土金属磷烯配合物。在这十多年的研究中,我们还发现了稀土金属磷烯配合物的一些有趣反应活性。稀土金属桥联磷烯配合物可基于两个磷烯配体氧化偶联成二磷烯配体而作为双电子还原剂。单核稀土金属磷烯配合物在温和条件下催化端烯的氢化反应,联合实验/密度泛函理论研究表明氢化反应以1,2 - 加成/消除机理进行,而不是常见的σ - 键复分解机理。这些反应活性对于稀土金属配合物来说是新的且很重要。此外我们研究中的配体设计可能有助于尚未实现的稀土金属 - 砷多重键配合物和碱土金属 - 磷多重键配合物的合成。在此,我们介绍我们对稀土金属磷烯配合物的研究,这是一个从桥联到端基配合物的历程。为了让读者全面了解稀土金属磷烯配合物的发展,还纳入了其他研究人员的一些发现。