Timmer Brian J J, Kravchenko Oleksandr, Liu Tianqi, Zhang Biaobiao, Sun Licheng
Department of Chemistry, School of Engineering Sciences in Chemistry, Biotechnology and Health, KTH Royal Institute of Technology, 10044, Stockholm, Sweden.
State Key Laboratory of Fine Chemicals, Institute of Artificial Photosynthesis, DUT-KTH Joint Education and Research Centre on Molecular Devices, Dalian University of Technology, 116024, Dalian, China.
Angew Chem Int Ed Engl. 2021 Jun 21;60(26):14504-14511. doi: 10.1002/anie.202101931. Epub 2021 May 19.
O-O bond formation with Ru(bda)L -type catalysts is well-known to proceed through a bimolecular reaction pathway, limiting the potential application of these catalysts at low concentrations. Herein, we achieved high efficiencies with mononuclear catalysts, with TOFs of 460±32 s at high catalyst loading and 31±3 s at only 1 μM catalyst concentration, by simple structural considerations on the axial ligands. Kinetic and DFT studies show that introduction of an off-set in the interaction between the two catalytic units reduces the kinetic barrier of the second-order O-O bond formation, maintaining high catalytic activity even at low catalyst concentrations. The results herein furthermore suggest that π-π interactions may only play a minor role in the observed catalytic activity, and that asymmetry can also rationalize high activity observed for Ru(bda)(isoq) type catalysts and offer inspiration to overcome the limitations of 2nd order catalysis.
众所周知,Ru(bda)L型催化剂形成O-O键是通过双分子反应途径进行的,这限制了这些催化剂在低浓度下的潜在应用。在此,通过对轴向配体进行简单的结构考量,我们使用单核催化剂实现了高效,在高催化剂负载量下的TOF为460±32 s,在仅1 μM催化剂浓度下的TOF为31±3 s。动力学和DFT研究表明,两个催化单元之间相互作用中引入偏移降低了二级O-O键形成的动力学势垒,即使在低催化剂浓度下也能保持高催化活性。本文的结果还表明,π-π相互作用在观察到的催化活性中可能只起次要作用,并且不对称性也可以解释Ru(bda)(isoq)型催化剂所观察到的高活性,并为克服二级催化的局限性提供灵感。