Loading…

Ni and Zn N-confused porphyrin complexes as recyclable catalysts for high efficiency solvent-free CO 2 fixation into cyclic carbonates

We designed versatile homogeneous catalysts for the solvent-free fixation of CO 2 with epoxides into cyclic carbonates based on the structure of Ni or Zn N-confused tetraphenylporphyrin (NCTPP), in which the outer nitrogen was modified with trimethylammonium bromide. The metal center acted as a Lewi...

Full description

Saved in:
Bibliographic Details
Published in:Catalysis science & technology 2021-03, Vol.11 (6), p.2144-2154
Main Authors: dela Cruz, Jay-ar B., Hung, Chen-Hsiung
Format: Article
Language:English
Citations: Items that this one cites
Items that cite this one
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:We designed versatile homogeneous catalysts for the solvent-free fixation of CO 2 with epoxides into cyclic carbonates based on the structure of Ni or Zn N-confused tetraphenylporphyrin (NCTPP), in which the outer nitrogen was modified with trimethylammonium bromide. The metal center acted as a Lewis acid whereas the bromide group acted as a nucleophile facilitating the double activation of the epoxide. A turnover number (TON) of up to 70 000 was achieved without a co-catalyst. Meanwhile, in the presence of tetrabutylammonium bromide (TBAB), a co-catalyst, the turnover frequency (TOF) and TON reached up to 370 000 h −1 and 1.3 × 10 6 , respectively, using a moderate CO 2 loading of 1.0 MPa. Theoretical calculations revealed that the Zn complex had superior catalytic activity due to its better ability to stabilize the nucleophilic oxygen of the substrate as evidenced by its high global electrophilicity index (GEI) and by reactivity predictors, including the orbital-weighted Fukui indices and dual descriptor. Lastly, the Zn complex was also demonstrated to be re-usable for up to four runs for the formation of glycerol carbonate from the fixation of CO 2 with glycidol.
ISSN:2044-4753
2044-4761
DOI:10.1039/D0CY02182B