| Literature DB >> 31405000 |
Norini Tahir1, Chidharth Krishnaraj1, Karen Leus2, Pascal Van Der Voort3.
Abstract
CovEntities:
Keywords: catalytic supports; covalent triazine frameworks; heterogeneous catalysis; metal catalysis; organic synthesis
Year: 2019 PMID: 31405000 PMCID: PMC6722925 DOI: 10.3390/polym11081326
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Scheme 1(a) Trimerization of 1,4-dicyanobenzene catalyzed by ZnCl2 under ionothermal reaction conditions for the formation of covalent triazine framework (CTF)-1; (b) Schematic representation of the P2O5-catalyzed direct condensation of terephthamide (TA) to a discrete pCTF-1; (c) Scheme showing reaction mechanism for CTF-HUST synthesis. (Modified and reproduced with permission from [4,15,16] respectively. Copyright 2008, 2018 and 2017, Wiley-VCH).
Scheme 2Friedel-Crafts synthesis for microporous covalent triazine polymer formation. Reproduced with permission from [17], Copyright 2015, Royal Society of Chemistry.
Summary of various catalytic reactions performed by utilizing CTFs.
| Material | Monomer | Metal content | Type of Reaction | Activity | Ref |
|---|---|---|---|---|---|
| Pd/CTF |
| 1 wt % Pd (nanoparticles) | Oxidation of glycerol into glyceric acid | Rate of glycerol | [ |
| Pd/CTF |
| 1 wt % Pd (nanoparticles) | Oxidation of Benzyl alcohol | Turn-over frequency (TOF) = 1453 h−1 | [ |
| Pd/CTF |
| 4 wt % Pd (nanoparticles) | Hydrogenation of | Pressure/Selectivity = 30 bar/98.9%; 20 bar/97.9% for 8H-phen | [ |
| Pd/CTF |
| 2.05 wt % Pd (nanoparticles) | Selective double carbonylation of aryl iodides | Several substrates tested | [ |
| Ru/CTF-c |
| 3.91 wt % Ru (nanoparticles) | Oxidation of 5-hydroxymethylfurfural to 2,5-furandicarboxylic acid | Conversion > 99% | [ |
| Ru/CTF-c |
| 5 wt % Ru coordination using (RuCl2(p-cymene))2 | Hydrogenolysis of xylitol | Full conversion with 15% selectivity to propylene glycol | [ |
| CTF-DCE-Ag |
| 4.3 wt % Ag (nanoparticles) | Carboxylation of terminal alkynes | TON: 247 | [ |
| Pt-CTF |
| - | Low temperature oxidation of methane to methanol | Selectivity > 75% | [ |
| Ir@CTF |
| 2.4 wt % Ir | Isomerization of 1-octen-3-ol to 3-octanone | TOF = 24 min−1 | [ |
| Rh@CTF-c |
| 3.5 wt % Rh | Hydroformylation of crude 1-octene | 62% conversion | [ |
| CTF-Ir |
| 16 wt % Ir | Dehydrogenation of formic acid | TOF = 27,000 h−1 | [ |
| Ir@meso-CTF |
| 2 wt % Ir | Hydrogenation of CO2 | TON = 358 | [ |
| Ir@meso-CTF@monolith |
| 0.23 μmol/0.045 mg Ir | Dehydrogenation of formic acid | TOF = 207,200 h−1/TON = 2230 | [ |
| Bpy-CTF-(IrCp*Cl)Cl |
| 4.7 wt % Ir | Hydrogenation of CO2 to formate | TOF = 5300 h−1 | [ |
| (bpy-CTF-Ru(acac)2)Cl |
| 1.68 wt % Ru | Hydrogenation of CO2 to formate | TOF = 22,700 h−1 | [ |
| (bpy-CTF-RuCl3) |
| 2.1 wt % Ru | Hydrogenation of CO2 to formate | TOF = 38,800 h−1 | [ |
| (bpy-CTF(RhCp*Cl)Cl) &(bpy-CTF(IrCp*Cl)Cl) |
| 1.78 wt % Rh & 4.7 wt % Ir | Transfer hydrogenation of carbonyl compounds | Conversion = 99% | [ |
| (bpy-CTF-Al(OTf)2) (Co(CO)4) |
| 3.76 wt % Al & 2.67 wt % Co | Carbonylation of epoxides into β-lactones | Conversion > 99% | [ |
| Ir(I)@bipyCTF |
| 8.26 wt % Ir | C-H borylation of 1,2-dichlorobenzene | TON = 64 | [ |
| Ir0.68-NHC-CTF |
| 0.68 wt % Ir | Hydrogenation of CO2 to formate | TOF = 1600 h−1 | [ |
| Rh-bpim-CTF |
| 0.61 wt % Rh | Carbonylation of methanol | Conversion = 93% | [ |
| (imidazolium-CTF)(Co(CO)4) |
| 3.62 wt % Co | Direct Synthesis of Methyl 3-Hydroxybutyrate from Propylene Oxide | Conversion > 99% | [ |
| V@acacCTF |
| 1.6 wt % V | Mannich reaction between 2-naphthol and | TON = 213 | [ |
* For the annotation of the material, the annotation used in the literature was applied.
Scheme 3Reaction scheme for the dynamic trimerization of 1,4-dicyanobenzene toward the formation of CTF (Adapted with permission from [28]. Copyright 2010, American Chemical Society).
Figure 1TEM images of PdPVA/CTF (a) and PdIMP/CTF (b). Insets: Particle size distributions of the Pd NPs (Reproduced with permission from [29]. Copyright 2015, Wiley-VCH).
Figure 2Schematic picture of (a) Pd/CTF catalyzed hydrogenation of N-heterocycles (Reproduced with permission from [32]. Copyright 2015, Royal Society of Chemistry); (b)Pd/CTF catalyzed carbonylation of aryl iodides with amines (Reproduced with permission from [33]. Copyright 2016, Royal Society of Chemistry).
Scheme 4Schematic representation of the coordination and stabilization of Ru NPs onto CTF material (Reproduced with permission from [34]. Copyright 2015, Wiley-VCH).
Scheme 5Polymerization of di-(4-cyanophenyl)ethyne (DCE) under ionothermal synthesis conditions (Reproduced with permission from [37]. Copyright 2018, American Chemical Society).
Scheme 6Schematic representation of the synthesis of the pyridine-based CTF [19].
Figure 3(a) Schematic diagram of the molecular Pt-CTF catalyst having a similar coordination environment as the molecular Periana catalyst (Pt(bpym)Cl2) for the oxidation of methane to methanol in concentrated sulfuric acid; (b) Structural model of Pt(bpym)Cl2; (c) EXAFS analysis of Pt-CTF and the fitted theoretical Pt(bpym)Cl2 model; (d) XPS N 1s spectra of Pt-modified 2,2′-bypyrimidine ligand and (e) XPS N 1s spectra of Pt-modified CTF (Adapted with permission from [39]. Copyright 2016, American Chemical Society).
Scheme 7Synthesis of the mesoporous CTF from trimerization of 2,6-dicyanopyridine and 4,4′-dicyanobiphenyl under ionothermal synthesis conditions (adapted with permission from [43]. Copyright 2015, Wiley-VCH).
Figure 4(A) SEM of a cut CTF-based sphere; (B) synthesis conditions for the shaping of CTF; (C) SEM image and its molecular structures of immobilized Ir complex on the CTF-based sphere; (D) XPS analysis of iridium species in the powder and shaped CTF catalysts (Reprinted with permission from [44]. Copyright 2016, Wiley-VCH).
Figure 5(Left) Representation of the coating procedure step. (Right) SEM micrograph of (A) CTF powders (B–E), CTF-coated monolith (F) view on the wall of a CTF-coated monolith (Adapted with permission from [45]. Copyright 2017, American Chemical Society).
Scheme 8Schematic representation of the synthesis of the bipyridine-based CTF (bpyCTF) (Reproduced with permission from [46]. Copyright 2012, Royal Society of Chemistry).
Figure 6Structural representation of (a) homogeneous Ir- and Rh-based catalysts, and (b) CTF-supported catalysts (Adapted with permission from [50]. Copyright 2016, Royal Society of Chemistry).
Figure 7Structural representation of the Ir(I)@bpyCTF catalyzed CH boryation of aromatic compound in the presence of B2Pin2 as a boron source (reproduced with permission from [52]. Copyright 2019, Elsevier).
Scheme 9Schematic representation of synthesis of the Ir-NHC-CTF (Reproduced with permission from [53]. Copyright 2017, American Chemical Society).
Figure 8Structural representation of the Rh-bpim-CTF catalyst in resting state (1), and (2) the suggested structure of the in situ generated active state (Reprinted with permission from [54]. Copyright 2018, Royal Society of Chemistry).
Figure 9(A) Comparison of the intramolecular stabilization of anion in (bis-imidazolium-CTF-Cl)(Co(CO)4) (right) over (imidazolium-CTF)(Co(CO)4) complexes (left); (B) Representation of the synthesis of (bis-imidazolium-CTF-Cl)(Co(CO)4) (i) ZnCl2, 400 °C; 48 h (ii) KCo(CO)4, MeOH, 50 °C, 0.5 MPa of CO, 24 h (Adapted with permission from [56]. Copyright 2018, Royal Society of Chemistry).
Figure 10(A) Schematic representation of the synthesis of acac-CTF supported VO(acac)2 complex, and (B) V@acac-CTF catalyzed Mannich-type reactions with different substrates (Adapted with permission from [57]. Copyright 2018, American Chemical Society).