| Literature DB >> 35539743 |
Tunmise Ayode Otitoju1, Abdul Latif Ahmad1, Boon Seng Ooi1.
Abstract
The blending of additives in the polyethersulfone (PES) matrix is an important approach in the membrane industry to reduce membrane hydrophobicity and improve the performance (flux, solute rejection, and reduction of fouling). Several (hydrophilic) modifications of the PES membrane have been developed. Given the importance of the hydrophilic modification methods for PES membranes and their applications, we decided to dedicate this review solely to this topic. The types of additives embedded into the PES matrix can be divided into two main categories: (i) polymers and (ii) inorganic nanoparticles (NPs). The introduced polymers include polyvinylpyrrolidone, chitosan, polyamide, polyethylene oxide, and polyethylene glycol. The introduced nanoparticles discussed include titanium, iron, aluminum, silver, zirconium, silica, magnesium based NPs, carbon, and halloysite nanotubes. In addition, the applications of hydrophilic PES membranes are also reviewed. Reviewing the research progress in the hydrophilic modification of PES membranes is necessary and imperative to provide more insights for their future development and perhaps to open the door to extend their applications to other more challenging areas. This journal is © The Royal Society of Chemistry.Entities:
Year: 2018 PMID: 35539743 PMCID: PMC9081404 DOI: 10.1039/c8ra03296c
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Advantages and disadvantages of incorporating polymer and inorganic additives in the PES membrane matrix
| Membrane synthesis approach | Advantages | Disadvantages |
|---|---|---|
| Blending with a polymer | (a) Miscibility in common solvents | (a) Tendency toward physical and/or chemical aging |
| (b) Flexible to incorporate | (b) Leaching during the preparation and operation process, which may reduce the efficiency | |
| (c) Poor compatibility in the polymer matrix | ||
| Blending with an inorganic material | (a) High chemical resistance | (a) More expensive than equivalent polymeric ones |
| (b) Improve thermal stability | (b) Defect-free commercial-scale inorganic PES membranes are difficult to manufacture | |
| (c) The resultant membrane combines the advantages of the organic and inorganic parts | (c) Stability of the doped form is a big issue due to its nano-size | |
| (d) Can be easily incorporated | (d) Very expensive formulations | |
| (e) Provides an enhanced surface that allows multiple functional groups to be added on the membrane surface | (e) Non-uniform dispersion of NPs in the polymer matrix | |
| (f) Aggregation phenomenon | ||
| (g) Weak interaction with the polymer matrix | ||
| (h) Leaching of NPs during the operation process | ||
| (i) Uncontrollable pore size | ||
| (j) Poor dissolution in various organic solvents |
Progress of recent studies for the fabrication of hydrophilic PES–polymer blend membranes
| Additive | Additive loadings (wt%) | Hydrophilic change (°) | Ref. |
|---|---|---|---|
| PEG | 2 | ∼70 to ∼57 |
|
| PEG/PVP | — | 85 to 59 |
|
| PVP 40K | 4 | 71 to 47 |
|
| PVP | 5 | ∼63 to ∼56 |
|
| P31R1 | 5 | ∼63 to 44 |
|
| PVP | 2 | ∼76 to ∼71 |
|
| T904 | 5 | ∼63 to ∼52 |
|
| PVP | 2 | ∼76 to ∼71 |
|
| PA-6 | 2 | ∼76 to 68 |
|
| PVP | 10 | 70 to 51 |
|
| NPhthCs | 0.9 | 61 to 56 |
|
Progress in recent studies in the fabrication of hydrophilic PES-amphiphilic copolymer blend membranes
| Additive | Synthesis of the additive | Additive loadings (wt%) | Hydrophilic change (°) | Ref. |
|---|---|---|---|---|
| PDMAEMA | RAFT | 20 | ∼84 to 56 |
|
| PNIPAAm | RAFT | 20 | ∼84 to ∼71 |
|
| F127- | ATRP | 15 | 72 to 53 |
|
| PSf- | ATRP | 5 | 85 to 52 |
|
| PS- | Free radical polymerization | — | ∼70 to ∼50 |
|
| MF- | Etherification | 0.36 | — |
|
| PMAAn–F127–PMAA | Free radical | 1.92 | ∼56 to 39 |
|
| PSA-PVP | Condensation reaction of 5, 5′-thiobis (4-(3-nitrophenyl) thiazol-2- amine) in the presence of terephthalic acid | 1 | ∼76 to 68 |
|
| PVP- | RAFT | 5 | 73 to 60 |
|
| PES- | RAFT and quaternization | 15 | 90 to 60 |
|
Unit in grams
Fig. 1Basic principles of the reactions with modified SiO2.[77]
Fig. 2Schematic illustration of the formation process of CZN.[87]
Fig. 3Schematic of (a) Fe3O4 treated with trisodium citrate, (b) Fe3O4/SiO2, (c) Fe3O4/SiO2-Met, and (d) Fe3O4/SiO2-amine NPs.[92]
Fig. 4Scheme of casting under a magnetic field.[93]
Fig. 5Schematic representation of the preparation of PES/n-Ag composite membranes.[99]
Progress in recent studies in the fabrication of hydrophilic PES/GO nanocomposite membranes
| Additive | Filler loadings (wt%) | Hydrophilic change (°) | Ref. |
|---|---|---|---|
| GO | 0.3 | 72 to ∼55 |
|
| GO/T904 | 0.3 | 72 to 54 |
|
| GO NS | 0.5 | 65 to 53 |
|
| GO/PAA | 1 | ∼71 to 58 |
|
| UiO-66@GO | 3.0 | ∼86 to 60 |
|
| GO | 3.0 | ∼86 to 72 |
|
| Partially rGO/TiO2 | 0.1 | ∼66 to 56 |
|
| GO | 0.1 | ∼66 to ∼59 |
|
| GO–ZnO | 0.1 | ∼78 to ∼54 |
|
| HPEI–GO | 5 | ∼86 to 63 |
|
Progress in recent studies in the fabrication of hydrophilic PES/CNTs nanocomposite membranes
| Additive | Treatment | Filler loadings (wt%) | Hydrophilic change (°) | Ref. |
|---|---|---|---|---|
| CNTs (20 nm) | — | 0.1 | ∼63 to ∼55 |
|
| CNTs (40 nm) | — | 0.1 | ∼63 to 56 |
|
| Carboxyl-functionalized SWCNT | — | 0.025 | ∼70 to ∼62 |
|
| PCA-functionalized MWCNT |
| 0.1 | 75 to 49 |
|
| PAA-functionalized MWCNT |
| 0.1 | 75 to ∼58 |
|
| SiO2 | — | 3 | 67 to ∼55 |
|
| Polyacrylamide-functionalized MWCNT |
| 0.1 | 75 to ∼63 |
|
| MWCNT | — | 0.1 | 75 to 65 |
|
| NH2-MWCNTs | Covalent-functionalization | 0.045 | ∼65 to ∼56 |
|
| PCL modified MWCNTs | With Sn(Oct)2 | 3 | ∼67 to 57 |
|
| Amine-functionalized MWCNTs | Strong acids (H2SO4/HNO3) and 1,3-phenylenediamine | 1 | 69 to ∼52 |
|
| MWCNT-OH | — | 0.8 | ∼77 to ∼74 |
|
| MWCNT-COOH | — | 0.8 | ∼77 to 59 |
|
| Acid-oxidized MWCNTs | HNO3/H2SO4 | 0.04 | 66 to 63 |
|
| MWCNTs | HNO3/H2SO4 | 2 | ∼71 to ∼60 |
|
| MWCNTs | — | 2 | ∼65 to ∼47 |
|
| Acid-functionalized MWCNT | PVP | 0.1 | ∼88 to 52 |
|
| Functionalized MWCNT | Non-covalent modification with SLS | 2 | ∼79 to 51 |
|
| Acid-oxidized MWCNTs coated by anatase TiO2 | Precipitation of TiCl4 precursor | 0.1 | 66 to ∼63 |
|
| ZnO coated MWCNTs | Coating | 0.5 | 68 to 57 |
|
| PAA grafted MWCNTs |
| 0.1 | ∼73 to ∼57 |
|
| Ag-coated MWCNTs | Ag | 0.9 | 64 to 51 |
|
| MWCNTs-PANI |
| 2 | 73 to ∼53 |
|
| Fe–Ag/functionalized MWCNT | Acid and then Fe and Ag NPs | 1 | 75 to ∼44 |
|
| TETA-MWCNTs | — | 0.4 | ∼68 to 60 |
|
| Acid-functionalized MWCNTs | HNO3 and H2SO4 | 0.5 | ∼70 to ∼57 |
|
Fig. 6Schematic illustration of the overall preparation process of HNTs-SO3H.[193]
Fig. 7Preparation process of sodium 4-styrene sulfonate grafted onto HNTs surface.[201]
Fig. 8Preparation process of HNTs-MPC via reverse atom transfer radical polymerization.[202]
Fig. 9Reaction principle for preparing HNTs-CS@Ag NPs.[203]
Fig. 10Basic principles of the reactions of the modified HNTs.[204]
Summaries of the applications of hydrophilic PES-organic membranes
| Additive | Application (operating pressure) | Performance of neat membrane {MR (m−1); PWF (L m−2 h−1); PF (L m−2 h−1); HP (L m−2 h−1); | Performance of composite membrane {MR (m−1); PWF (L m−2 h−1); PF (L m−2 h−1); HP (L m−2 h−1); | Ref. |
|---|---|---|---|---|
| PSA-PVP | Protein purification (4 bar) | PWF: 12.3; PF: 9.5; FRR: 76; BSA | PWF: 244.2; PF: 57; FRR: 60.2; BSA |
|
| PA-6 | Protein purification (4 bar) | PWF: 7.1; BSA | PWF: 80.7; BSA |
|
| PEG | Water treatment (1 bar) | HP: 4.998; MR: 8.060 × 10−11 | HP: 9.422; MR: 4.275 × 10−11 |
|
| PVP | Protein purification (4 bar) | PWF: 7.1; BSA | PWF: 166.5; BSA |
|
| PVP | Protein purification (4 bar) | PWF: 12.3; PF: 9.5; FRR: 76; BSA | PWF: 277.4; PF: 63.6; FRR: 54.6; BSA |
|
| PEG-PVP | Water treatment (2 bar) | PWF: 2201.8 | PWF: 18 899.1 |
|
| PES- | Protein purification (2 bar) | PWF: 18.76; | PWF: 126.7; |
|
| PEG | Protein purification (1 bar) | PWF: N/A; BSA | PWF: 76.7; BSA |
|
| PVP- | Protein purification (0.05 bar) | FRR: 50.6; PA: 19.3 | FRR: 96.6; PA: 10 |
|
| PVP | Water treatment (1 bar) | PWF: 64.34; | PWF: 108.09; |
|
| PES- | Protein purification (2 bar) | PWF: 18.76; | PWF: 110; |
|
| PVP | Wastewater treatment (1 bar) | PWF: 2.2; BSA | PWF: 15.8; BSA |
|
| PES- | Protein purification (1 bar) | PWF: 45.6; FRR: 49.3; BSA | PWF: 115; FRR: 84.2; BSA |
|
| P31R1 | Wastewater treatment (1 bar) | PWF: 2.2; BSA | PWF: 116.5; BSA |
|
| F127- | Protein purification (2 bar) | PA: 13.2 | PA: 34.3 |
|
| T904 | Wastewater treatment (1 bar) | PWF: 2.2; BSA | PWF: 62; BSA |
|
| PVP | Protein purification (2.5 bar) | PWF: 67.6; PEG35k | PWF: 134.8; PEG35k |
|
| PSf- | Protein purification (1.5 bar) | PA: 44.2; BSA | PA: 22.3; BSA |
|
| PVP | Wastewater treatment (5 bar) | PWF: 108.21; FRR: 38.8; COD | PWF: 59.2; FRR: 59; COD |
|
| PVP | Water treatment (2 bar) | PWF: N/A; PF: N/A; FRR: N/A; HA | PWF: 2439; PF: 266.5; FRR: 98.5; HA |
|
| MF- | Water treatment (1 bar) | PWF: 60.7; FRR: 70.8 | PWF: 164.7; FRR: 91.6 |
|
| PVP | Water treatment (0.2–0.3 bar) | PWF: 128.26 | PWF: 376.8 |
|
| PMAAn–F127–PMAA | Protein purification (1 bar) | PWF: 180.8; BSA | PWF: 238.6; BSA |
|
| NPhthCs | Water treatment (3–6 bar) | BSA flux: 17.6; HP: 7.1; BSA | BSA flux: 55.2; HP: 26.8; BSA |
|
Summaries of the applications of hydrophilic PES–inorganic membranes
| Additives | Applications (operating pressure) | Performance of neat membrane {PWF (L m−2 h−1); PF (L m−2 h−1); | Performance of composite membrane {PWF (L m−2 h−1); PF (L m−2 h−1); | Ref. |
|---|---|---|---|---|
| CNTs | Desalination (4 bar) | PWF: 24.25; Na2SO4 | PWF: 52.86; Na2SO4 |
|
| Fe3O4 | Water treatment (4 bar) | Cu+ | Cu+ |
|
| CNTs | Desalination (4 bar) | PWF: 24.25; Na2SO4 | PWF: 38.91; Na2SO4 |
|
| TiO2 | Water treatment (10 bar) | PWF: 1.7 | PWF: 8.2 |
|
| Fe3O4–SiO2 | Water treatment (4 bar) | Cu+ | Cu+ |
|
| GO | Protein purification (1 bar) | PWF: 2; FRR: 26; BSA | PWF: 37; FRR: 58; BSA |
|
| TiO2 | Wastewater treatment (6 bar) | PWF: 21; DR23 | PWF: 33.4; DR23 |
|
| SWCNT | Wastewater treatment (2 bar) | FRR: 93.7; BPA | FRR: 96.8; BPA |
|
| PES/Fe3O4–SiO2-amine | Water treatment (4 bar) | Cu+ | Cu+ |
|
| TiO2 | Wastewater treatment (5 bar) | PWF: 23; FRR: 75.2; RG19 | PWF: 32.6; FRR: 87.4; RG19 |
|
| MWCNT | Water treatment (4 bar) | FRR: 44; PWF: 9 | FRR: 95; PWF: 23 |
|
| Fe3O4–SiO2-Met | Water treatment (4 bar) | Cu+ | Cu+ |
|
| Mechanically modified TiO2 | Water treatment (1 bar) | FRR: 83.33; PWF: 17.6 | FRR: 51.85; PWF: 39.8 |
|
| FeN | Water treatment (1 bar) | PWF: 6.1; Cu + | PWF: 24; Cu + |
|
| MWCNT | Water treatment (4 bar) | FRR: 44; PWF: 9 | FRR: 67; PWF: 30.5 |
|
| Mechanically and chemically modified TiO2 | Water treatment (1 bar) | FRR: 83.33; PWF: 17.6 | FRR: 61.54; PWF: 54.9 |
|
| GO-T904 | Protein purification (1 bar) | PWF: 2; FRR: 26; BSA | PWF: 245; FRR: 62; BSA |
|
| A-PCC | Wastewater treatment (1.5 bar) | PWF: 102; PF: 49.87; FRR: 61.8; oil | PWF: 180; PF: 102.15; FRR: 86.4; oil |
|
| Fe3O4 | Water treatment (1–10 bar) | PWF: 12.3; NaCl | PWF: 86.2; NaCl |
|
| Mechanically and chemically modified TiO2 | Water treatment (1 bar) | FRR: 60; PA: 33.5; PWF: 364.8 | FRR: 84; PA: 22.6; PWF: 462.3 |
|
| MWCNT | Water treatment (4 bar) | FRR: 44; PWF: 9 | FRR: 76; PWF: 26 |
|
|
| Protein purification (1 bar) | PWF: 25; FRR: 53.5; PF: 42.7; BSA | PWF: 64; FRR: 79.4; PF: 67.7; BSA |
|
| TiO2 | Water treatment (1 bar) | FRR: 60; PA: 33.5; PWF: 364.8 | FRR: 57; PA: 37.5; PWF: 345.9 |
|
| MWCNT | Water treatment (4 bar) | FRR: 44; PWF: 9 | FRR: 53; PWF: 23 |
|
| AgNP | Water treatment (2–4 bar) | PWF: 365 | PWF: 327 |
|
| SiO2@N-Halamine | Water treatment (1 bar) | PVA | PVA |
|
| Amine-functionalized MWCNT | Desalination (4 bar) | PWF: 13.6; Na2SO4 | PWF: 23.7; Na2SO4 |
|
| TMU-5 | Water treatment (3 bar) | PWF: 133.29; FRR: 24.47 | PWF: 182.02; FRR: 98.74 |
|
| Mesostructured SBA-15 | Water treatment (3 bar) | PWF: 181.4 | PWF: 316.1 |
|
| PCL modified CNT | Desalination (8 bar) | PWF: 28; Cd ions | PWF: 61; Cd ions |
|
| PES/mesostructured SBA-15/CES-15 | Water treatment (3 bar) | PWF: 181.4 | PWF: 351.7 |
|
| GO | Wastewater treatment (4 bar) | PWF: 8.2; FRR: 35; dye | PWF: 20.4; FRR: 90.5; dye |
|
| Mesostructured SBA-15-APTMS-15 | Water treatment (3 bar) | PWF: 181.4 | PWF: 356.8 |
|
| ZIF-L | Water treatment (1 bar) | PWF: 215; FRR: 72 | PWF: 378; FRR: 82 |
|
| F-MWCNTs | Protein purification (3 bar) | PWF: 124; PF: 14.5; BSA | PWF: 184; PF: 33.2; BSA |
|
| Mesostructured SBA-15/AEAPTMS-15 | Water treatment (3 bar) | PWF: 181.4 | PWF: 595.8 |
|
| Hydroxylated MWCNT | Water treatment (1 bar) | PWF: 587.1 | PWF: 812.9 |
|
| Mesostructured SBA-15/CES-30 | Water treatment (3 bar) | PWF: 181.4 | PWF: 463.6 |
|
| Carboxylated MWCNT | Water treatment (1 bar) | PWF: 587.1 | PWF: 412.9 |
|
| Nano-SiO2 | Wastewater treatment (2–6 bar) | FRR: 82.1; HA flux: 59.2; HA | FRR: 86.2; HA flux: 77.4; HA |
|
| GO-PAA | Wastewater treatment (4 bar) | PWF: 43; PF: 9.8; CR (SM): 44.1; CR (SWE): 39.7 | PWF: 57; PF: 21.8; CR (SM): 53.5; CR (SWE): 48.8 |
|
| SiO2 | Water treatment (4 bar) | PWF: 249.37; BSA | PWF: 510.76; BSA |
|
| Oxidized MWCNT | Desalination (4 bar) | PWF: 5; Na2SO4 | PWF: 7.3; Na2SO4 |
|
| ZnO | Protein purification (1 bar) | PWF: 32.8; BSA | PWF: 116.6; BSA |
|
| CNT | Water treatment (4.1 bar) | TOC | TOC |
|
| ZnO | Water treatment (1.5 bar) | FRR: 97.01; PWF: 30.42; HA flux: 24.84; RFR: 17.72 | FRR: 91.1; PWF: 51.01; HA flux: 44.64; RFR: 12.27 |
|
| CNT | Water treatment (3.5 bar) | BSA | BSA |
|
| ZnO | Water treatment (4 bar) | PWF: 31; FRR: 39.4 | PWF: 48; FRR: 68.9 |
|
| UiO-66@GO | Water treatment (2.5 bar) | PWF: 3.8; DR | PWF: 15.8; DR |
|
| ZnO nanorod | Water treatment (4 bar) | PWF: 31; FRR: 39.4 | PWF: 50; FRR: 73.1 |
|
| Nano-hybrid f-MWCNT/PVP90 | Protein purification (2.75–3.25 bar) | PWF: 7.6; PA: 16.9 | PWF: 71.7; PA: 7 |
|
| CS-ZnO HNPS | Water treatment (N/A) | PWF: 1215.8 | PWF: 4135.8 |
|
| SLS-CNT | Protein purification (1 bar) | PWF: 141; BSA | PWF: 595.6; BSA |
|
| CZN | Protein purification (3 bar) | BSA flux: 92.5; FRR: 44.6; PWF: 514.1 | BSA flux: 117.7; FRR: 50.1; PWF: 678.5 |
|
| TiO2 coated MWCNT | Desalination (5 bar) | PWF: 3.71; FRR: 53.1; Na2SO4 | PWF: 4.35; FRR: 83; Na2SO4 |
|
| ZrO2 | Wastewater treatment (0.345–3.1 bar) | PWF: 878.3 | PWF: 1581 |
|
| GO | Water treatment (at 2.5 bar) | PWF: 3.8; DR | PWF: 8.8; DR |
|
| ZrO2 | Protein purification (1 bar) | BSA | BSA |
|
| ZnO coated MWCNTs | Wastewater treatment (4 bar) | Dye | Dye |
|
| Al2O3 | Water treatment (4.5 bar) | PWF: 8.5; Cu | PWF: 25.3; Cu |
|
| PAA grafted MWCNTs | Desalination (4 bar) | Na2SO4 | Na2SO4 |
|
| Alumina | Protein purification (2 bar) | PWF: 182.2; BSA | PWF: 209; BSA |
|
| rGO-TiO2 | Wastewater treatment (5 bar) | PWF: 23; FRR: 75.2; RG19 | PWF: 43.3; FRR: 96.8; RG19 |
|
| ZrO2 | Protein purification (2 bar) | PWF: 182.2; BSA | PWF: 190.1; BSA |
|
| Ag coated MWCNTs | Water treatment (4 bar) | PWF: 554 | PWF: 556 |
|
| TiO2 | Protein purification (2 bar) | PWF: 182.2; BSA | PWF: 198.6; BSA |
|
| MWCNTs-PANI | Water treatment (1 bar) | HA | HA |
|
| Al2O3 | Water treatment (0.69–1.03 bar) | PWF: 866.5 | PWF: 1268 |
|
| HMO(0.75)–TiO2 (0.25) | Wastewater treatment (1 bar) | PWF: 23.71; oil | PWF: 28.48; oil |
|
| GO | Wastewater treatment (5 bar) | PWF: 23; FRR: 75.2; RG19 | PWF: 35.9; FRR: 90.7; RG19 |
|
| Cu2+-HNTs | Protein purification (1 bar) | PF: 73.1; PEG10k | PF: 120; PEG10k |
|
| Magnetic-treated Fe3O4 | Water treatment (4 bar) | PWF: 36; FRR: 52 | PWF: 65; FRR: 77.7 |
|
| Fe–Ag/f-MWCNT | Water treatment (4 bar) | PWF: 26.5; Cr6+ ions | PWF: 36.9; Cr6+ ions |
|
| HMO(0.25)–TiO2 (0.75) | Wastewater treatment (1 bar) | PWF: 23.71; | PWF: 27.33; |
|
| HMO | Protein purification (1.5 bar) | PWF: 39.4; BSA | PWF: 499.2; BSA |
|
| SiO2 | Wastewater treatment (1.5 bar) | PWF: N/A; PF: N/A; oil | PWF: 117; PF: 76.67; oil |
|
| Sulfonated HNT | Desalination and wastewater treatment (4 bar) | PWF: 29.3; NaCl | PWF: 40.3; NaCl |
|
| Magnetic-treated PANI/Fe3O4 | Water treatment (4 bar) | PWF: 36; FRR: 52 | PWF: 52; FRR: 80 |
|
| GO-ZnO | Wastewater treatment (5 bar) | PWF: 1.5; salt | PWF: 13.5; salt |
|
| Magnetic-treated MWCNT | Water treatment (4 bar) | PWF: 36; FRR: 52 | PWF: 29; FRR: 64.6 |
|
| TETA-MWCNT | Desalination (10 bar) | PWF: 36.27; NaCl | PWF: 84.35; NaCl |
|
| Chitosan nano-biopolymers | Water treatment (4 bar) | PWF: 13 | PWF: 22 |
|
| Fe3O4 | Water treatment (4 bar) | PWF: 36; FRR: 52 | PWF: 33; FRR: 68 |
|
| Hollow mesoporous SiO2 spheres | Protein purification (1 bar) | PWF: 38; BSA | PWF: 195.7; BSA |
|
| HPEI-GO | Protein purification (1 bar) | FRR: 86.6; PWF: 204.5; PA: 61.11 | FRR: 92.1; PWF: 206.9; PA: 25.89 |
|
| HNTs-poly(NASS) | Desalination (4 bar) | PWF: 29.4; RR49 | PWF: 97.5; RR49 |
|
| HNTs-CS@Ag | Protein purification (1 bar) | PEG20k | PEG20k |
|
| PANI/Fe3O4 | Protein purification (4 bar) | PWF: 36; FRR: 52 | PWF: 33; FRR: 68 |
|
| MCNs | Protein purification (1 bar) | PWF: 218.9; PF: 37.8; FRR: 64.9: PA: 40.3: BSA | PWF: 257.8; PF: 30.4; FRR: 60.9: PA: 7.8: BSA |
|
| HNTs-dextran | Protein purification (1 bar) | PWF: 80.3; FRR: 86; PEG20k | PWF: 224.5; FRR: 96; PEG20k |
|
| f-MWCNTs | Wastewater treatment (4.1 bar) | PWF: 24.28; PF: 4.4 | PWF: 53.91; PF: 7.4 |
|
| Fe3O4-MWCNT | Water treatment (4 bar) | PWF: 36; FRR: 52 | PWF: 45; FRR: 76.6 |
|
| HNTs-MPC | Protein purification (1 bar) | FRR: 85.2; PWF: 110.06; PEG20k | FRR: 93.1; PWF: 224.39; PEG20k |
|
| CNC | Protein purification (2.7 bar) | PWF: 93.4; BSA | PWF: 195; BSA |
|
| SiO2 | Wastewater treatment (1.5 bar) | PWF: 87.347; PF: 60.112; oil | PWF: 102.43; PF: 90.937; oil |
|