| Literature DB >> 29799459 |
Kléver Santiago Sánchez-Zambrano1, Lairana Lima Duarte2, Débora Aline Soares Maia3, Enrique Vilarrasa-García4, Moisés Bastos-Neto5, Enrique Rodríguez-Castellón6, Diana Cristina Silva de Azevedo7.
Abstract
CO₂ adsorption on mesoporous silica modified withEntities:
Keywords: CO2 adsorption; double functionalization; silica
Year: 2018 PMID: 29799459 PMCID: PMC6025462 DOI: 10.3390/ma11060887
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Elemental analysis of the samples studied.
| Sample | C (%) | H (%) | N (%) | C (mmol·g−1) | N (mmol·g−1) |
| MTAC a |
|---|---|---|---|---|---|---|---|
| MSS | 0.24 | 0.42 | 0.04 | 0.21 | 0.03 | - | - |
| MSG20 | 7.44 | 1.53 | 2.46 | 5.86 | 1.76 | 3.33 | 0.88 |
| MSG20I30 | 21.08 | 5.39 | 10.62 | 17.57 | 7.59 | 2.31 | 3.80 |
a Maximum theoretical adsorption capacity by chemisorption, mmol CO2 g−1.
Figure 1(A) Thermogravimetric Analysis (TGA) for mesoporous silica (MSS), MSG20, and MSG20I30 samples; (B) derivate of the weight loss (DTGA) for the these materials.
Figure 2Mass charge ratio distribution measured by TGA.
Figure 3(A) X-ray powder diffraction (XRD) patterns of all mesoporous silica samples and transmission electron micrographs (TEM) micrographs of MSS with (B1) scale bar = 100 nm and (B2) 50 nm.
Figure 4N2 adsorption/desorption isotherms and pore size distributions (PSD’s) at −196 °C, open symbols belong to desorption step.
Textural properties calculated from N2 adsorption/desorption isotherms.
| Samples | ABET (m2·g−1) | Pore Vol (cm3·g−1) | Pore Size (nm) | Microp Vol (cm3·g−1) |
|---|---|---|---|---|
| MSS | 392 | 1.43 | 9.6 | 0.125 |
| MSG20 | 211 | 0.96 | 7.8 | 0.056 |
| MSG20I30 | 52 | 0.06 | 7.7 | 0.014 |
ABET: specific surface area as determined by Brunauer-Emmett-Teller (BET) equation; Pore Vol: total pore volume, as calculated from adsorbed N2 at P/P0 ~ 0.985; Microp Vol: total micropore volume, as determined by D-R equation.
Figure 5Differential enthalpy of adsorption in function of CO2 uptake for mesoporous silica.
Figure 6Energy sites distribution.
Amine density related to calorimetry characterization results.
| Samples | Ø−NH2 a molec·nm−2 | Energy Sites μmol CO2g−1 | Thermokinetic Parameter | ||
|---|---|---|---|---|---|
| <40 kJ mol−1 | >40 kJ mol−1 | τmax, s | Δ | ||
| MSG20 | 5.02 | 190 | 573 | 354 | -43 |
| MSG20I30 | 87.91 | 240 | 1113 | 1274 | -34 |
a Assuming a homogenous coverage.
Figure 7CO2 isotherms at 25 °C for mesoporous materials.
Figure 8CO2 isotherms for (A) MSG20 and (B) MSG20I30 samples.
Fitting parameters to the experimental data for MSG20 at 50 °C and 75 °C.
| Parameter | CO2 | N2 | ||
|---|---|---|---|---|
| 50 °C | 75 °C | 50 °C | 75 °C | |
| 0.76 | 0.68 | 0.57 | 0.43 | |
| 9.41 | 9.42 | 0.13 | 0.08 | |
| 3.28 | 2.65 | |||
| 0.05 | 0.04 | |||
| R2 | 0.9812 | 0.9991 | 0.9274 | 0.9421 |
Fitting parameters to the experimental data for MSG20I30 at 50 °C and 75 °C.
| Parameter | CO2 | N2 | ||
|---|---|---|---|---|
| 50 °C | 75 °C | 50 °C | 75 °C | |
| 2.13 | 2.66 | 0.016 | 0.015 | |
| 14.00 | 15.70 | 0.94 | 0.91 | |
| 1.02 | 1.06 | |||
| 0.13 | 0.11 | |||
| R2 | 0.9739 | 0.9970 | 0.9795 | 0.9825 |
Comparison of adsorption capacity of MSG60 and MSG20I30 with others similar ones found in the literature.
| Sample | T (°C)/pCO2 (bar) | Amine, N Content (mmol/g) | CO2 Uptake (mmol/g) | Reference |
|---|---|---|---|---|
| SBA-15 | 60/0.15 | APTES, 1.89 | 1.06 | [ |
| SBA-15 | 60/0.15 | APTES, 2.70 | 0.52 | [ |
| SBA-15 | 60/0.15 | APTES, 2.61 | 0.66 | [ |
| CC * | 45/0.25 | MAP, 2.63 | 0.87 | [ |
| MCM-41 | 45/0.25 | MAP, 3.42 | 1.10 | [ |
| MSG20 | 50, 75/0.15 | APTES, 2.46 | 0.59/0.44 | This work |
| SBA-15 | 45/1 | APTES/PEI, 7.64 | 2.52 | [ |
| SBA-15 | 45/1 | APTES/TEPA, 7.92 | 3.16 | [ |
| SBA-15 | 45/1 | APTES/PEI, 7.00 | 1.88 | [ |
| PQCS2129 ** | 50,80/0.15 | APTES/PEI,7.50 | 2.91/2.31 | [ |
| MSG20I30 | 50, 75/1 | APTES/PEI, 7.59 | 2.1/2.61 | This work |
* Commercial Silica gel; ** Commercial Silica support.
Figure 9Pure CO2 and N2 and binary isotherms (0.15 CO2 and 0.85 N2) at 50 °C for (A) MSG20 and (B) MSG20I30 samples, continuous lines are fits to Dualsite Langmuir model, and dashed lines are fits to the Multi Region Langmuir Extended model.
Working capacity, CO2/N2 selectivity, adsorption enthalpy, and Adsorbent Performance Indicador (API) values at 50 and 75 °C for MSG20I30 and MSG20 samples.
| Sample | T (°C) | WC (cm3·cm−3) 0.02–1 bar | α, CO2/N2 | Δ | API |
|---|---|---|---|---|---|
| MSG20I30 | 50 | 15.6 | 1453.4 | 73.2 | 309.7 |
| 75 | 17.4 | 1679.8 | 399.1 | ||
| MSG20 | 50 | 11.83 | 194.47 | 43.8 | 52.2 |
| 75 | 11.55 | 237.57 | 62.3 |
Figure 10(A) Thermogram (at 25 °C) for CO2 adsorption on the three rounds; (B) corresponding CO2 adsorption isotherms; and, (C) Differential enthalpies of CO2 adsorption (at 25 °C) for the three rounds of adsorption on the same MSG20I30 sample.
Figure 11(A) Thermogram (at 50 °C) for CO2 adsorption on the three rounds, (B) corresponding CO2 adsorption isotherms, and (C) differential enthalpies of CO2 adsorption (at 50 °C) for the three rounds of adsorption on the same MSG20I30 sample.
Figure 12CO2 Adsorption Isotherms with regeneration temperature in addition to molecular vacuum, for MSG20I30 sample at 91 °C.