| Literature DB >> 31936062 |
Juan Tan1, Shuibo Xie2, Guohua Wang1, Chuck Wah Yu1, Taotao Zeng1, Pingli Cai3, Huayong Huang3.
Abstract
In this work, the thermo-sensitive materials N-isopropylacrylamide (Entities:
Keywords: U(VI); adsorption; orthogonal experiments; thermo-sensitive hydrogel; wastewater treatment
Year: 2020 PMID: 31936062 PMCID: PMC7022275 DOI: 10.3390/polym12010151
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
List of the main materials for the preparation of the temperature sensitive hydrogel.
| Materials | Manufacturer |
|---|---|
| N-isopropylacrylamide (NIPAM) | Chengdu Aikeda Chemical Reagent Co., Ltd. (Chengdu, China) |
| acrylic acid (AA) | Aladdin Reagent Co., Ltd. (Shanghai, China) |
| Carboxymethyl cellulose (CMC) | Shanghai shanpu chemical Co., Ltd. (Shanghai, China) |
| N,N-methylene bis acrylamide (BIS) | Tianjin Kemiou Chemical Reagent Co., Ltd. (Tianjin, China) |
| Ammonium persulfate (APS) | Xilong Chemical Co., Ltd. (Guangdong, China) |
| N,N,N′,N′-tetramethylethylenediamine (TEMED) | Tixiai Chemical Industry Development Co., Ltd. (Shanghai, China) |
Level factor of the orthogonal experiment.
| Level | A (CMC/g) | B (AA/g) | C (APS/g) | D (BIS/g) | E (Temperature/°C) |
|---|---|---|---|---|---|
| 1 | 0.05 | 0.05 | 0.02 | 0.01 | 0 |
| 2 | 0.1 | 0.1 | 0.04 | 0.03 | 25 |
| 3 | 0.2 | 0.15 | 0.06 | 0.05 | 35 |
| 4 | 0.3 | 0.2 | 0.08 | 0.07 | 70 |
Arrangements of the 5-variable 4-level orthogonal experiment.
| L16(45) | (A) CMC/g | (B) AA/g | (C) Initiator/g | (D) Crosslinker/g | (F) Temperature/°C |
|---|---|---|---|---|---|
| 1 | A10.05 | B1 0.05 | C1 0.02 | D1 0.01 | E1 0 |
| 2 | A10.05 | B2 0.1 | C2 0.04 | D2 0.03 | E2 25 |
| 3 | A1 0.05 | B3 0.15 | C3 0.06 | D3 0.05 | E3 35 |
| 4 | A1 0.05 | B4 0.2 | C4 0.08 | D4 0.07 | E4 70 |
| 5 | A2 0.1 | B1 0.05 | C2 0.04 | D3 0.05 | E4 70 |
| 6 | A2 0.1 | B2 0.1 | C1 0.02 | D4 0.07 | E3 35 |
| 7 | A2 0.1 | B3 0.15 | C4 0.08 | D1 0.01 | E2 25 |
| 8 | A2 0.1 | B4 0.2 | C3 0.06 | D2 0.03 | E1 0 |
| 9 | A3 0.2 | B1 0.05 | C3 0.06 | D4 0.07 | E2 25 |
| 10 | A3 0.2 | B2 0.1 | C4 0.08 | D3 0.05 | E1 0 |
| 11 | A3 0.2 | B3 0.15 | C1 0.02 | D2 0.03 | E4 70 |
| 12 | A30.2 | B4 0.2 | C2 0.04 | D1 0.01 | E3 35 |
| 13 | A4 0.3 | B1 0.05 | C4 0.08 | D2 0.03 | E3 35 |
| 14 | A4 0.3 | B2 0.1 | C3 0.06 | D1 0.01 | E4 70 |
| 15 | A4 0.3 | B3 0.15 | C2 0.04 | D4 0.07 | E1 0 |
| 16 | A4 0.3 | B4 0.2 | C1 0.02 | D3 0.05 | E2 25 |
Results of the 5-variable 4-level orthogonal experiment.
| L16 (45) | A | B | C | D | F | Test Index | |
|---|---|---|---|---|---|---|---|
| Water Adsorption Ratio ( | U(VI) Removal Rate ( | ||||||
| 1 | A1 | B1 | C1 | D1 | E1 | 41 | 82.7 |
| 2 | A1 | B2 | C2 | D2 | E2 | 13 | 94.2 |
| 3 | A1 | B3 | C3 | D3 | E3 | 37 | 86.9 |
| 4 | A1 | B4 | C4 | D4 | E4 | 3 | 4.1 |
| 5 | A2 | B1 | C2 | D3 | E4 | 22 | 94.7 |
| 6 | A2 | B2 | C1 | D4 | E3 | 25 | 93.6 |
| 7 | A2 | B3 | C4 | D1 | E2 | 21 | 92.3 |
| 8 | A2 | B4 | C3 | D2 | E1 | 50 | 97.3 |
| 9 | A3 | B1 | C3 | D4 | E2 | 12 | 92.8 |
| 10 | A3 | B2 | C4 | D3 | E1 | 18 | 92.7 |
| 11 | A3 | B3 | C1 | D2 | E4 | 28 | 16.4 |
| 12 | A3 | B4 | C2 | D1 | E3 | 4 | 42.3 |
| 13 | A4 | B1 | C4 | D2 | E3 | 37 | 85.9 |
| 14 | A4 | B2 | C3 | D1 | E4 | 25 | 37.0 |
| 15 | A4 | B3 | C2 | D4 | E1 | 43 | 94.9 |
| 16 | A4 | B4 | C1 | D3 | E2 | 12 | 92.1 |
Range analysis of the L16 (45) experimental results.
| Analysis | A | B | C | D | E |
|---|---|---|---|---|---|
|
| 24.325 | 29.150 | 27.300 | 23.275 | 38.975 |
|
| 30.475 | 21.000 | 21.375 | 32.950 | 15.375 |
|
| 16.100 | 32.925 | 31.675 | 23.175 | 26.425 |
|
| 30.025 | 17.850 | 20.575 | 21.525 | 20.150 |
| R | 14.375 | 15.075 | 11.100 | 11.425 | 23.600 |
| Optimal level |
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Figure 1Proposed fabrication process of the CMC/P (NIPAM-co-AA) hydrogel.
Figure 2Photographs of the interpenetrating network (IPN) hydrogel after infusion in deionized water at 20 and 60 °C.
Figure 3FTIR spectrum of CMC, PNIPAM, and CMC/P (NIPAM-co-AA).
Figure 4Thermogravimetric (TGA) curves of P-NIPAM, P (NIPAM-co-AA), P (NIPAM-co-CMC), and CMC/P (NIPAM-co-AA) at a heating rate of 10 °C·min−1.
Figure 5Effect of reaction time on U(VI) adsorption by CMC/P (NIPAM-co-AA) and PNIPAM.
Kinetic parameters of adsorption of PNIPAM and CMC/P (NIPAM-co-AA) at 298 K.
| Material | Pseudo-First-Order Kinetic Model | Pseudo-Second-Order Kinetic Model | |||||
|---|---|---|---|---|---|---|---|
|
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| R2 |
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| ||
| PNIPAM | 12.47 | 0.0124 | 0.49 | 0.412 | 0.1181 | 12.32 | 0.9993 |
| CMC/P (NIPAM-co-AA) | 14.69 | 0.0189 | 0.81 | 0.848 | 0.0922 | 14.71 | 1 |
Figure 6Effect of pH on U(VI) adsorption by CMC/P (NIPAM-co-AA) and PNIPAM.
Figure 7Fitting curve of Langmuir (a) and Freundlich (b) isothermal adsorption model of U(VI) adsorption by CMC/P-(NIPAM-co-AA).
Langmuir and Freundlich isothermal adsorption model parameters of U(VI) adsorption by CMC/P (NIPAM-co-AA).
| T/K | Langmuir | Freundlich | ||||
|---|---|---|---|---|---|---|
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| 293 | 285.71 | 0.2414 | 0.9954 | 36.9439 | 1.8896 | 0.9128 |
| 303 | 149.25 | 0.3807 | 0.9990 | 29.6571 | 1.7391 | 0.9673 |
| 308 | 105.26 | 0.5901 | 0.9937 | 28.2022 | 1.8008 | 0.9690 |
Figure 8Scanning electron microscopy (SEM) micrographs of the CMC/P (NIPAM-co-AA) hydrogel before and after adsorption of U(VI): (a) before adsorption, 20 μm; (b) after adsorption, 20 μm; (c) before adsorption, 100 μm; and (d) after adsorption, 100 μm.
Figure 9Log differential pore size distribution curves of CMC/P (NIPAM-co-AA) hydrogel before and after U(VI)-loading.
Mercury intrusion porosimetry (MIP) parameters of CMC/P (NIPAM-co-AA) hydrogel before and after U(VI)-loading.
| Sample | Average Pore Diameter (nm) | Porosity (%) |
|---|---|---|
| Before adsorption | 90,195.76 | 97.89 |
| After adsorption | 21,469.33 | 94.82 |
Figure 10(a) XPS spectra of the CMC/P (NIPAM-co-AA) hydrogel before and after U(VI) adsorption, (b) high-resolution XPS spectra of U4f, and (c,d) O1s before and after adsorption.
Figure 11FTIR of CMC/P (NIPAM-co-AA) before and after the functional groups were shielded.
Figure 12U(VI) adsorption capacity after the functional groups were shielded.
Figure 13The proposed mechanism of the CMC/P (NIPAM co-AA) hydrogel interaction with UO22+.
Figure 14Desorption of Uranium at different temperatures.
Figure 15The uranium retention in hydrogel of temperature swing adsorption-desorption.