| Literature DB >> 29125574 |
Nestor J Bello-Vieda1, Ricardo A Murcia2, Alvaro Muñoz-Castro3,4, Mario A Macías5, John J Hurtado6.
Abstract
The reaction of isophthaloyl dichloride with 1H-1,2,4-triazole afforded the new ligand 1,3-phenylenebis(1,2,4-triazole-1-yl)methanone (1). A series of Co(II), Cu(II), Zn(II) and Ni(II) complexes were synthesized using 1 and then characterized by melting point analysis, elemental analysis, theoretical calculations, thermogravimetric analysis, X-ray powder diffraction, nuclear magnetic resonance, infrared and Raman spectroscopy. Experimental and computational studies predict the formation of coordination polymers (CPs). The cobalt and copper CPs and zinc(II) complex were found to be good initiators for the ring-opening polymerization of ε-caprolactone (CL) under solvent-free conditions. ¹H-NMR analysis showed that the obtained polymers of CL were mainly linear and had terminal hydroxymethylene groups. Differential scanning calorimetry showed that the obtained polycaprolactones had high crystallinity, and TGA showed that they had decomposition temperatures above 400 °C. These results provide insight and guidance for the design of metal complexes with potential applications in the polymerization of CL.Entities:
Keywords: coordination polymers; initiators; triazole ligand; ε-caprolactone polymerization
Mesh:
Substances:
Year: 2017 PMID: 29125574 PMCID: PMC6150338 DOI: 10.3390/molecules22111860
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Synthesis of ligand 1.
Infrared spectral bands for ligand 1 and its CPs.
| Compound | Wavenumber ν/cm−1 | ||||
|---|---|---|---|---|---|
| ν(C–H) | ν(C=O) | ν(N–N) | ν(C–N) | ν(M–N) | |
| 3121 s | 1710 vs | 1429 m | 1217 m | -- | |
| 3126 s | 1700 m | 1427 m | 1211 m | 419 w | |
| 3135 s | 1708 vs | 1422 m | 1215 m | 417 w | |
| 3118 s | 1691 vs | 1418 m | 1223 w | 420 w | |
| 3134 s | 1629 m | 1427 m | 1132 m | 309 m | |
w: weak; m: medium; s: strong; vs: very strong.
Thermoanalytical results (TGA and DTG) for the CPs.
| Compound (Formula) | TG Range/°C | DTGmax/°C | Mass Loss | Total Mass Loss | Assignment | Metallic Residue | |
|---|---|---|---|---|---|---|---|
| Estimated (calcd.)/% | |||||||
| 25–319 | 226 | 1 | 29.46 (30.53) | 78.95 (78.29) | loss of C2H2N3 | CoCl | |
| 319–500 | 395, 432, 444 | 3 | 30.59 (32.34) | loss of C6H4 + CO + HCl | |||
| 500–695 | 631 | 1 | 18.84 (15.42) | loss of C2NH3 | |||
| 25–216 | 190 | 1 | 13.83 (15.76) | 87.07 (84.22) | loss of HCl + CO | Cu | |
| 216–368 | 287, 312, 320 | 3 | 53.15 (52.06) | loss of C9H7N3O + HCl | |||
| 368–697 | 598 | 1 | 20.09 (16.40) | loss of C2N3 | |||
| 21–221 | 211 | 1 | 26.49 (24.70) | 88.52 (83.84) | loss of 2HCl + CO | Zn | |
| 221-300 | 281 | 1 | 31.62 (35.64) | loss of C2HN3 + C6H5 | |||
| 300–436 | 403 | 1 | 14.77 (13.60) | loss of C2HN2O | |||
| 436–495 | 476 | 1 | 15.64 (9.90) | loss of CN2 | |||
| 37–411 | 291 | 1 | 34.24 (36.04) | 71.95 (74.95) | loss of C6H4 + CO + HCl | NiCl | |
| 411–545 | 345 | 1 | 22.52 (22.99) | loss of C2H2N3 + CO | |||
| 545–695 | 111 | 1 | 14.22 (16.05) | loss of C2HN3 | |||
TG: thermogravimetric analysis; DTG: derivative thermogravimetric; n: number of decomposition steps.
Figure 1XRD patterns for Co, Cu and Ni CPs showing some of the hkl indices.
Refined unit cell parameters obtained from the Le Bail method for CPs.
| Complex | Co | Cu | Ni |
|---|---|---|---|
| 14.236 (19) | 14.171 (2) | 7.180 (2) | |
| 3.629 (4) | 3.6617 (5) | 3.5372 (5) | |
| 12.250 (16) | 12.232 (2) | 9.950 (3) | |
| 94.36 (9) | 94.21 (2) | 90.65 (2) | |
| 631 (1) | 633.0 (2) | 252.71 (15) | |
| Space Group | |||
| Rp | 2.76 | 4.56 | 3.88 |
| wRp | 3.62 | 5.97 | 5.04 |
| GOF | 1.02 | 1.19 | 1.13 |
Yield and characterization of the obtained PCL by DCS and TGA.
| Initiator | (%) Yield | Melting point a (°C) | Crystallization T (°C) | Crystallinity b (%) | Decomposition T (°C) |
|---|---|---|---|---|---|
| 57 | 59.0 | 37.24 | 67 | 435 | |
| 56 | 59.8 | 37.09 | 68 | 440 | |
| 50 | 59.6 | 38.33 | 63 | 445 |
All the materials were synthesized with a [monomer]/[CPs] mass ratio of 490:1 at 110 °C for 72 h. [a] The value correspond to the first heating ramp. [b] Calculated using a 100% crystalline ε-PCL enthalpy of fusion equal to 136 J/g [3].
Figure 2Representative structures for both ligand and metallic complexes. (a) Free ligand (1); (b) The metal is coordinated only via N,N of the triazolyl ligand; (c) The metal is coordinated via a C=O and a N from the triazolyl ligand moiety; (d) Two metals are coordinated via the C=O and N moieties of the triazolyl ligand. Calculations were done by using DFT TZ2P/BP86-D3 level of theory.
Figure 3Simulated infrared spectra of the possible complexes. The letters (a–d) corresponds to the molecules in Figure 2, with M = Zn.
Figure 4Probable structure for coordination polymers (i) 2 and 5; (ii) for 3.