| Literature DB >> 30060609 |
Xinyu Zheng1, Huaili Zheng2, Rui Zhao3, Yongjun Sun4, Qiang Sun5, Shixin Zhang6, Yongzhi Liu7.
Abstract
The removal of methylene blue (Entities:
Keywords: 2-acrylamido-2-methyl-1-propanesulfonic acid; acrylic acid; adsorption; magnetic nanoparticles; methylene blue
Year: 2018 PMID: 30060609 PMCID: PMC6117654 DOI: 10.3390/ma11081312
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Calibration curve between MB concentration and absorbance (the insert is the UV–vis spectrum of MB in solution).
Scheme 1Scheme of grafting polymerization (R represents Fe3O4@SiO2).
Figure 2Schematic diagram on synthesis of FSMAA.
Figure 3TEM images of (a) Fe3O4, (b) Fe3O4@SiO2, and (c) FSMAA (the scale bars were 200 nm for a, b, and c).
Figure 4Characterization results of (a) FTIR spectra; (b) XRD patterns; (c) XPS full scanned spectra; (d) magnetic hysteresis loops (the insert is the image of MB solutions before and after adsorption; the adsorbent dosage, initial concentration, and pH are 1.0 g L−1, 200 mg L−1, and 9.0, respectively).
Figure 5Effect of grafted monomer concentration on (a) magnetization and (b) adsorption (solution pH = 9.0).
Figure 6(a) Zeta potentials/pH profiles of FSMAA 0.9, FSMAA 1.5, and FSMAA 2.0 (electrolyte concentration = 0.7 g L−1); (b) effect of solution pH on adsorption (the insert is the image of MB’s chemical structure).
Figure 7(a) Adsorption kinetics of MB adsorbed onto FSMAA; (b) fitting curves of pseudo-first-order kinetic model; (c) fitting curves of pseudo-second-order kinetic model; (d) fitting curves of intraparticle diffusion model.
Kinetic parameters for MB adsorption onto FSMAA (n = 3, Mean ± SD).
| Monomer Concentration (mol L−1) | qe,exp (mg g−1) | Pseudo-First-Order Model | Pseudo-Second-Order Model | Intraparticle Diffusion Model | ||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| qe1,cal (mg g−1) | k1 × 102 (min−1) | R2 | Reduced Chi-Sqr | qe2,cal (mg g−1) | k2 × 104 (g mg−1 min−1) | R2 | Reduced Chi-Sqr | ki,1 | ki,2 | ki,3 | ||
| (mg g−1 min−1/2) | ||||||||||||
| 0.9 | 124.8 ± 3.0 | 125.0 ± 2.6 | 4.20 ± 0.32 | 0.939 | 4.642 | 137.4 ± 1.5 | 3.84 ± 0.16 | 0.998 | 0.500 | 14.82 ± 1.36 | 11.20 ± 0.60 | 2.50 ± 0.70 |
| 1.5 | 232.3 ± 5.5 | 195.7 ± 13.2 | 5.34 ± 0.72 | 0.832 | 14.218 | 227.3 ± 4.0 | 8.83 ± 0.51 | 0.996 | 8.888 | 43.10 ± 2.86 | 14.44 ± 1.58 | 3.22 ± 0.60 |
| 2.0 | 346.8 ± 3.0 | 307.2 ± 14.8 | 3.79 ± 0.50 | 0.837 | 52.516 | 358.4 ± 4.7 | 2.56 ± 0.15 | 0.998 | 2.691 | 49.30 ± 1.19 | 15.69 ± 1.64 | 4.65 ± 0.21 |
Figure 8(a) Adsorption isotherms of MB adsorbed onto FSMAA; (b) fitting curves of Langmuir model; (c) fitting curves of Freundlich model; (d) fitting curves of D-R model.
Isothermal parameters for MB adsorption onto FSMAA (n = 3, Mean ± SD).
| Monomer Concentration (mol L−1) | Langmuir Model | Freundlich Model | D-R Model | |||||||||
|---|---|---|---|---|---|---|---|---|---|---|---|---|
| qm (mg g−1) | KL (L mg−1) | R2 | Reduced Chi-Sqr | n | KF | R2 | Reduced Chi-Sqr | qD (mg g−1) | KD (mol2 kJ−2) | R2 | Reduced Chi-Sqr | |
| 0.9 | 147.9 ± 4.2 | 0.077 ± 0.003 | 0.991 | 2.479 × 10−7 | 4.79 ± 0.81 | 40.95 ± 7.36 | 0.819 | 0.028 | 134.3 ± 5.5 | 6.97 ± 0.73 | 0.919 | 0.013 |
| 1.5 | 238.1 ± 5.2 | 0.061 ± 0.001 | 0.998 | 5.762 × 10−8 | 3.34 ± 0.43 | 41.28 ± 7.76 | 0.884 | 0.038 | 203.2 ± 19.0 | 4.80 ± 0.84 | 0.798 | 0.067 |
| 2.0 | 421.9 ± 19.4 | 0.054 ± 0.005 | 0.929 | 2.704 × 10−6 | 2.96 ± 0.50 | 57.73 ± 14.19 | 0.819 | 0.097 | 314.9 ± 26.0 | 3.12 ± 0.34 | 0.911 | 0.048 |
Figure 9RL values of MB adsorbed onto FSMAA.
The maximum adsorption capacities of FSMAA 2.0 and other adsorbents for MB.
| Adsorbent | pH | Temperature (K) | Equilibrium Time (min) | Adsorption Capacity (mg g−1) | Reference |
|---|---|---|---|---|---|
| SNCM | 6.0 | 323 | 30 | 20.0 | [ |
| SW-ZnO-PANI | 7.0 | 305 | 100 | 20.6 | [ |
| GO-CS-Fe3O4 | 5.3 | 303 | 60 | 95.2 | [ |
| Fe3O4/SiO2-GO | N.A. a | 333 | 70 | 111.1 | [ |
| Fe3O4@C NPs | 6.0 | 298 | 180 | 117.0 | [ |
| GO-Fe3O4 | N.A. a | 298 | 30 | 167.2 | [ |
| CS-Glu-MCMs | 7.0 | 293 | 5 | 182.5 | [ |
| MG-ILs-OH | 12.0 | 303 | 60 | 243.3 | [ |
| FSMAA 2.0 | 9.0 | 303 | 90 | 421.9 | This study |
a: not avaliable.
Figure 10Schematic illustration of MB adsorbed onto FSMAA.
Figure 11C1s and S2p XPS spectra of (a,c) FSMAA; (b,d) FSMAA-MB.
Normalized peak areas and assignments of XPS spectra.
| Sample | Peak for C1s Spectra | Peak for S2p Spectra | |||||||
|---|---|---|---|---|---|---|---|---|---|
| Peak 1 | Peak 2 | Peak 3 | Peak 4 | Peak 1 | Peak 2 | Peak 3 | Peak 4 | ||
| FSMAA | BE (eV) | 288.5 | 286.1 | 284.5 | — | 168.6 | 167.6 | — | — |
| RAP (%) | 13.04 | 9.26 | 77.70 | — | 33.33 | 66.67 | — | — | |
| FSMAA-MB | BE (eV) | 288.3 | 286.1 | 284.2 | 285.1 | 168.0 | 167.0 | 164.9 | 163.7 |
| RAP (%) | 6.23 | 4.04 | 65.45 | 24.28 | 19.14 | 38.29 | 14.19 | 28.38 | |
| Assignment | C=O | C–OH/C–N/C–S | C–H/C–C | phenylalk-ane | S=O | sulfoether/S–H | |||
BE: binding energy; RAP: relative area percentage.
Figure 12(a) Leaching of Fe from FSMAA in different pH solutions (the insert is the image of desorption percentages obtained by different desorbents); (b) recovery percentage of FSMAA and MB concentration in desorbent solution after every regeneration experiment in eight adsorption–regeneration cycles (grafted monomer concentration = 2.0 mol L−1).