Résumé
The programmable design and construction of multirole or swing-role metal-organic frameworks (MR/SR-MOFs) for variable CO2 conversions is appealing for green and sustainable chemistry. Herein, we describe a facile MR/SR-MOF synthetic strategy for on-demand engineering of the catalytic pore-spaces in a primitive MOF for diverse CO2 chemical fixation. Distinct functional groups can be precisely and quantitively immobilized into the prototypical LIFM-28 (proto-LIFM-28) by virtue of post-synthesis based its solid-state dynamic attribute, generating different catalytic pore-spaces suitable for hydrosilylation, Nmethylation, cycloaddition, and cyclization reactions of CO2. Remarkably, the resultant LIFM-DSL-3 carrying amino and CO2-masked N-heterocyclic carbene (NHC-CO2) sites presents excellent hydrosilylation performance with complete Ph2SiH2 conversion (> 99%) and high silyl methoxide (SMO) selectivity (95%) under atmospheric CO2 pressure, achieving extraordinary turnover number (TON) of 4367 and turnover frequency (TOF) of 6221 h -1 beneficial to efficient methanol release upon hydrolysis. Moreover, exceptionally high N-methylation efficiency was obtained for CO2 transformation via N-methylation. This work demonstrates how to design MR/SR-MOFs as a multivariate catalytic platform for the cost-saving multi-role and swingrole applications through on-demand manipulation and installation of active sites into a single MOF matrix without de novo synthesis.