| Literature DB >> 31412560 |
Olga Alekseeva1, Andrew Noskov2, Elena Grishina1, Lyudmila Ramenskaya1, Nadezhda Kudryakova1, Vladimir Ivanov3,4, Alexander Agafonov1.
Abstract
Composites of al">montmorilloniteEntities:
Keywords: FTIR spectra; glass transition temperature; ionic liquid; montmorillonite; porosity; thermal stability
Year: 2019 PMID: 31412560 PMCID: PMC6721065 DOI: 10.3390/ma12162578
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Structural formula of (a) a 1-butyl-3-methylimidazolium cation [BMIm]+, as well as (b) bis(trifluoromethylsulfonyl)imide [NTf2]−, (c) trifluoromethanesulfonate [OTf]−, and (d) dicyanamide [DCA]− anions.
Figure 2Characterization of montmorillonite (MMT) K10 powder: (a) Size distribution by intensity (dynamic light scattering (DLS)) particles; (b) isotherms of low-temperature nitrogen adsorption-desorption on particles; (c) Barrett-Joyner-Halenda (BJH) pore size distribution for MMT K10.
Figure 3Scanning electron microscope (SEM) image (a) and energy-dispersive X-ray spectroscopy (EDX) analysis (b) of the MMT K10.
Figure 4SEM-images (left) and EDX analysis (right) of the samples of MMT K10/BMImOTf (a,b), MMT K10/BMImDCA (c,d), and MMT K10/BMImNTf2 (e,f).
Figure 5X-ray diffraction (XRD) patterns for MMT K10 (a), MMT K10/BMImOTf (b), MMT K10/BMImNTf2 (c), and MMT K10/BMImDCA (d).
Results of X-ray spectral analysis for MMT K10 and MMT K10/IL composites.
| Reflection Index | MMT K10 | MMT/BMImOTf | MMT/BMImNTf2 | MMT/BMImDCA | ||||
|---|---|---|---|---|---|---|---|---|
| 2θ, deg | 2θ, deg | 2θ, deg | 2θ, deg | |||||
| (001) | 8.74 | 1.011 | 8.88 | 0.995 | 8.91 | 0.992 | 8.87 | 0.996 |
| (002) | 17.67 | 0.502 | 17.84 | 0.497 | 17.87 | 0.496 | 17.76 | 0.499 |
| (110) | 19.65 | 0.451 | 19.64 | 0.452 | 19.85 | 0.447 | 19.95 | 0.445 |
| (101) | 26.54 | 0.336 | 26.60 | 0.335 | 26.84 | 0.332 | 26.76 | 0.333 |
| (220) | 34.85 | 0.257 | 34.94 | 0.257 | 35.0 | 0.256 | 34.96 | 0.256 |
| (112) | 45.38 | 0.200 | 45.55 | 0.199 | 45.68 | 0.198 | 45.53 | 0.199 |
Figure 6Differential scanning calorimetry (DSC) curves of the second heating cycle (a) 1: BMImOTf, 2: MMT K10/BMImOTf; (b) 1: BMImNTf2, 2: MMT K10/BMImNTf2; (c) 1: BMImDCA, 2: MMT K10/BMImDCA.
Characteristic temperatures of thermal behaviour of the samples under study, determined by DSC.
| Sample | |||
|---|---|---|---|
| BMImOTf | 18.7 | ||
| MMT K10/BMImOTf | 16.2 | ||
| BMIm DCA | −92.7 | ||
| MMT K10/BMImDCA | −91.6 | ||
| BMImNTf2 | −86.3–−86.8 a | −48.6 b–−46.3 a,b | −6.5 b–−6.5 a,b |
| MMT K10/BMImNTf2 | −83.5 | −19.3 | 0.7 |
a. Reported in [37]; b. The onset temperature of exothermic (T) and endothermic (T) peaks detected in the first heating cycle.
Figure 7TG curves: (a) 1: BMImOTf, 2: MMT K10, and 3: MMT K10/BMImOTf; (b) 1: BMImNTf2, 2: MMT K10, and 3: MMT K10/BMImNTf2; (c) 1: BMImDCA, 2: MMT K10, and 3: MMT K10/BMImDCA.
Characteristic temperatures (T) and mass loss (Δmi) of the thermal decomposition of the samples under study.
| Parameter | BMImOTf | MMT K10/BMImOTf | BMImNTf | MMT K10/BMImNTf2 | BMImDCA | MMT K10/BMImDCA |
|---|---|---|---|---|---|---|
| First stage | ||||||
| 54.3 | 61.9 | - | 53.3 | 40.1 | 52.2 | |
| 110.1 | 164.2 | - | 119.0 | 80.6 | 130.2 | |
| Δm1, % | 1.9 | 2.1 | - | 1.3 | 1,9 | 4.9 |
| Second stage | ||||||
| 427.7 | 392.8 | 441.1 | 425.2 | 293.7 | 260.7 | |
| 440.9 | 408.9 | 481.5 | 453.8 | 313.5 | 280.4 | |
| 462.8 | 449.5 | 500.1 | 460.4 | 324.1 | 303.7 | |
| Δm2, % | 91.6 | 67.7 | 90.4 | 68.6 | 57.4 | 30.9 |
| Third stage | ||||||
| - | - | - | - | 372.1 | 374.9 | |
| - | - | - | - | 393.0 | 385.8 | |
| - | - | - | - | 428.4 | 482.0 | |
| Δm3, % | - | - | - | - | 28.4 | 20.1 |
Figure 8FTIR spectra of (a) MMT K10, (b) BMImNTf2, and (c) MMT K10/BMImNTf2.
Figure 9FTIR spectra of (a) MMT K10, (b) BMImOTf, and (c) MMT K10/BMImOTf.
Figure 10FTIR spectra of (a) MMT K10, (b) BMImDCA, and (c) MMT K10/MImDCA.
Some important peaks in the FTIR spectra of pure ionic liquids BMImNTf2, BMImOTf, and BMImDCA, as well as pure MMT K10 clay, and their assignments.
| Wavenumber (cm−1) | Assignment [ |
|---|---|
| 3300–3500 | |
| 1633 | δOH (H2O) |
| 1049 | |
| 620 | |
| 529–469 | |
|
| |
| 3000–32000 | νasH(C4,5)H, |
| 2800–3000 | |
| 2100–2300 | |
| 1150–1600 a | νCH2(N), νCH3(N), ring CH3 and νCN, νCCCC, δasip ring and δCCCC, δCH3(N)CN |
| 1000–1200 b | |
| 1100–1200 b | |
| 1000–1050 b | |
| 1300-137 °C | |
| 1110-125 °C | |
| 1000-180 °C |
a. Peaks observed in the BMImDCA spectrum; b. peaks observed in the BMImOTf spectrum; c peaks observed in theBMImNTf2 spectrum; νs and νas: symmetric and asymmetric stretching, respectively; δs and δas: symmetric and asymmetric bending, respectively.