| Literature DB >> 27087483 |
Zaki N Zahran1,2, Eman A Mohamed1, Yoshinori Naruta1.
Abstract
Efficient reduction of CO2 into useful carbon resources particularly CO is an essential reaction for developing alternate sources of fuels and for reducing the greenhouse effect of CO2. The binuclear Ni, Fe-containing carbon monoxide dehydrogenase (CODHs) efficiently catalyzes the reduction of CO2 to CO. The location of Ni and Fe at proper positions allows their cooperation for CO2 to CO conversion through a push-pull mechanism. Bio-inspired from CODHs, we used several cofacial porphyrin dimers with different substituents as suitable ligands for holding two Fe ions with suitable Fe-Fe separation distance to efficiently and selectively promote CO2 to CO conversion with high turnover frequencies, TOFs. The substituents on the porphyrin rings greatly affect the catalysis process. By introducing electron-withdrawing/-donating groups, e.g. electron-withdrawing perfluorophenyl, at all meso positions of the porphyrin rings, the catalysis overpotential, η was minimized by ≈0.3 V compared to that obtained by introducing electron-donating mesityl groups. The Fe porphyrin dimers among reported catalysts are the most efficient ones for CO2 to CO conversion. Control experiments indicate that the high performance of the current CO2 to CO conversion catalysts is due to the presence of binuclear Fe centers at suitable Fe-Fe separation distance.Entities:
Year: 2016 PMID: 27087483 PMCID: PMC4834491 DOI: 10.1038/srep24533
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Chemical structures of the six Fe porphyrin dimers and their corresponding monomers.
Figure 2Cyclic voltammograms of the six Fe-porphyrin dimers (0.5 mM) in DMF/10% H2O at 50 mV/s scan rate under Ar (black lines) and CO2 (red lines).
Insets: magnified traces of CVs.
Figure 3Catalytic CV responses (left, forward scan only shown for clarity) of three Fe porphyrin dimers (0.5 mM) at 100 mV/s scan rate in DMF/10% H2O saturated with CO2 and the corresponding foot-of-the-wave analysis (right).
Figure 4(a) Catalytic CVs responses (forward scan only shown for clarity) and (b) the Tafel plot [logTOF −η relationships] of the six Fe porphyrin dimers (0.5 mM) at 100 mV/s scan rate in DMF/10% H2O saturated with CO2. *logTOF resulted from bulk electrolysis experiments.
Catalysis parameters of Fe porphyrin dimers (this work) and other reported molecular CO2/CO reduction catalysts.
| Solvent | Catalyst | logTOF, s−1 | logTOF0, s−1 | Ref. | ||
|---|---|---|---|---|---|---|
| DMF/10% H2O −0.69 | Fe2DTPFPP, −1.25 | 1.6 × 104 | 0.40 − 0.60 | 1.5 − 3.9, 4.2 | −5.0 | This work |
| DMF/10% H2O − 0.69 | Fe2DTF2PP, −1.34 | 3.7 × 104 | 0.50 − 0.65 | 2.0 − 4.3, 4.5 | −6.1 | This work |
| DMF/10% H2O − 0.69 | Fe2DTCl2PP, −1.35 | 4.1 × 103 | 0.55 − 0.70 | 1.8 − 3.5, 3.6 | −7.2 | This work |
| DMF/10% H2O − 0.69 | Fe2DTPP, −1.40 | 2.0 × 104 | 0.60 − 0.75 | 2.4 − 4.2, 4.3 | −8.1 | This work |
| DMF/10% H2O − 0.69 | Fe2DTMP, −1.60 | 4.1 × 103 | 0.70 − 0.85 | 2.3 − 4.8, 5.8 | −9.6 | This work |
| DMF/10% H2O − 0.69 | Fe2TPFPP, −TMP −1.35 | 7.3 × 105 | 0.55 − 0.70 | 2.8 − 4.3, 4.7 | −6.1 | This work |
| DMF/10% H2O − 0.69 | FeTPP, − 1.41 | 2.1 × 103 | 0.60 − 1.0 | 1.4 − 3.1, 3.3 | −8.4 | This work |
| DMF/5% H2O /3M PhOH −0.69 | CAT | >5.0 × 106 | 0.45 − 0.70 | 1.8 − 3.2, 3.8 | −6.0 | |
| DMF/5% H2O /3M PhOH −0.69 | FCAT | >5.0 × 106 | 0.40 − 0.70 | 1.6 − 3.8, 4.0 | −5.5 | |
| DMF/5% H2O /3M PhOH −0.69 | FeTPP, −1.43 | 3.5 × 104 | 0.60 − 1.00 | 2.5 − 4.3, 4.5 | −8.0 | |
| CH3CN/0.8M CF3CH2OH −0.65 | Re(bpy)(py)(CO)3 , −1.30 | 875.0 | NA | 2.9 | −8.0 | |
| CH3CN −0.65 | (bbpy)Mn(CO)3 , −1.28 | 5.0 × 103 | NA | 3.7 | −7.0 | |
| CH3CN −0.65 | Ru(tpy)(Mebim-py), −1.34 | 59.0 | NA | 1.8 | −9.9 | |
| CH3CN −0.65 | Ru(tpy)(bpy) −1.34 | 7.6 | NA | 0.9* | −10.8 | |
| DMF/0.1M HBF4 −0.23 | 35.0 | NA | 1.5 | −7.4 |
aFe meso-tetra(2,6-dihydroxyphenyl)porphyrin.
bFe 5,15-di((2,6-dihydroxyphenyl)-10,20-di(pentafluorophenyl)porphyrin.
*logTOFmax, s−1.
Figure 5(a) Bulk electrolysis conducted for 6 hrs at −1.25 V vs. NHE (η = 0.56 V) and (b) products analysis of Fe2DTPFPP (0.5 mM) and GC blank in DMF/10% H2O under CO2.