Cost Estimation of Polymeric Adsorbents
Abstract
:1. Introduction
2. Materials and Methods
2.1. Recipe Cost
Recipe Selection
2.2. Raw Material Cost
2.3. Energy Cost
2.4. Labor Cost
3. Results and Discussion
Calculations
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Polymer | Modification Agents | pH | Adsorption Capacity (mg/g) | Metal Ion | Ref | |
---|---|---|---|---|---|---|
Cross-Linker | Grafting Agent | |||||
Chitosan | GLA | - | 6 | 208 | Cu(II) | [30] |
Chitosan | GLA | poly(acrylic acid) | 6 | 318 | Cu(II) | [30] |
Chitosan | GLA | poly(acrylamide) | 6 | 166 | Cu(II) | [30] |
Chitosan | GLA | - | 4 | 655 | Cr(VI) | [30] |
Chitosan | GLA | poly(acrylic acid) | 4 | 518 | Cr(VI) | [30] |
Chitosan | GLA | poly(acrylamide) | 4 | 935 | Cr(VI) | [30] |
Chitosan | GLA | - | 5 | 145 | Hg(II) | [31] |
Chitosan | GLA | FeCl2·4H2O, FeCl3·6H2O | 5 | 152 | Hg(II) | [31] |
Chitosan | GLA | Poly(ethylene imine) | 4 | 125 | Cr(VI) | [32] |
Chitosan | GLA | Graphite oxide | 6 | 381 | Hg(II) | [33] |
Chitosan | GLA | FeCl2·4H2O, FeCl3·6H2O, Graphite oxide | 6 | 397 | Hg(II) | [33] |
Chitosan | - | - | 5 | 167 | Zn(II) | [34] |
Chitosan | - | Succinic anhydride | 5 | 245 | Zn(II) | [34] |
Chitosan | EPI | Chlorosulfuric acid | 6 | 85 | Ni(II) | [35] |
Chitosan | EPI | Chlorosulfuric acid | 6 | 76 | Hg(II) | [35] |
Chitosan | GLA | Poly(ethylene imine) | 6 | 152 | Ni(II) | [35] |
Chitosan | GLA | Poly(ethylene imine) | 6 | 126 | Hg(II) | [35] |
Polymer | Cross-Linker | Grafting Agent | Method | Duration (h) | Instrumentation | Ref |
---|---|---|---|---|---|---|
Chitosan | GLA | - | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [30] |
Vacuum Drying | 12 | Oven Thermofisher (1,45 kW) | ||||
Stirring | 1 | Stirrer CAT M 6,1 (580 W) | ||||
Chitosan | GLA | poly(acrylic acid) | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [30] |
Vacuum Drying | 12 | Oven Thermofisher (1,45 kW) | ||||
Stirring | 3 | Stirrer CAT M 6,1 (580 W) | ||||
Chitosan | GLA | poly(acrylamide) | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [30] |
Vacuum Drying | 12 | Oven Thermofisher (1,3 kW) | ||||
Stirring | 1 | Stirrer CAT M 6,1 (580 W) | ||||
Chitosan | GLA | - | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [31] |
Drying | 24 | Oven Thermofisher (1,45 kW) | ||||
Stirring | 3 | Stirrer CAT M 6,1 (580 W) | ||||
Chitosan | GLA | FeCl2·4H2O, FeCl3·6H2O | Stirring | 4 | CAT M 6,1 (580 W) | [31] |
Freeze-drying | 12 | Christ Alpha 1-4 (510 W) | ||||
Sonication | 0.5 | Sonicator Fisherbrand (500 W) | ||||
Vacuum Oven | 12 | Oven Thermofisher (1,45 kW) | ||||
Chitosan | GLA | Poly(ethylene imine) | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [32] |
Vacuum Drying | 12 | Oven Thermofisher (1,45 KW) | ||||
Stirring | 29 | CAT M 6,1 (580 W) | ||||
Chitosan | GLA | Graphite oxide | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [33] |
Vacuum Oven | 36 | Oven Thermofisher (1,45 kW) | ||||
Ultrasonic Stirring | 0.5 | Sonicator Fisherbrand (500 W) | ||||
Stirring | 7.5 | CAT M 6,1 (580 W) | ||||
Chitosan | GLA | FeCl2·4H2O, FeCl3·6H2O | Stirring | 3 | CAT M 6,1 (580 W) | [33] |
Graphite oxide | Sonication | 0.5 | Sonicator Fisherbrand (500 W) | |||
Vacuum Oven | 12 | Oven Thermofisher (1,45 kW) | ||||
Chitosan | - | - | Stirring | 1 | CAT M 6,1 (580 W) | [34] |
Oven | 12 | Oven Thermofisher (1,45 KW) | ||||
Soxhlet Washing | 24 | Soxhlet Electrothermal (580 W) | ||||
Chitosan | - | Succinic anhydride | Stirring | 21 | CAT M 6,1 (580 W) | [34] |
Freeze Drying | 120 | Christ Alpha 1-4 (510 W) | ||||
Chitosan | EPI | Chlorosulfuric acid | Stirring | 2 | CAT M 6,1 (580 W) | [35] |
Oven Drying | 24 | Oven Thermofisher (1,45 kW) | ||||
Soxhlet Washing | 24 | Soxhlet Electrothermal (580 W) | ||||
Chitosan | GLA | Poly(ethylene imine) | Soxhlet | 24 | Soxhlet Electrothermal (580 W) | [35] |
Stirring | 17 | CAT M 6,1 (580 W) | ||||
Oven Drying | 24 | Oven Thermofisher (1,45 kW) |
Material Produced Polymer/Cross-Linker/Grafting Agent) | Raw Materials | Cost | Ref | ||
---|---|---|---|---|---|
Raw Materials a (€) | Energy b (€) | Final Recipe (€) | |||
Chitosan/GLA/- | Chitosan (High molecular weight); Glutaraldehyde (50 wt% in water); Acetic acid solution (>99%) | 2.32 | 6.19 | 8.51 | [30] |
Chitosan/GLA/Poly(acrylic acid) | Chitosan (High molecular weight); Glutaraldehyde (50 wt% in water); Acetic acid solution; Potassium persulfate; Acrylic acid | 2.92 | 6.41 | 9.33 | [30] |
Chitosan/GLA/Poly(acrylamide) | Chitosan (High molecular weight); Glutaraldehyde (50 wt% in water); Acetic acid solution; Potassium persulfate; Acrylamide | 2.59 | 5.84 | 8.43 | [30] |
Chitosan/GLA/FeCl2·4H2O | FeCl2·4H2O (p.a > 99.0%); Chitosan (High molecular weight); FeCl3·6H2O (reagent grade, 97%); Glutaraldehyde (50 wt% in water; Acetic acid solution (>99%) | 2.13 | 5.06 | 7.19 | [31] |
Chitosan/GLA/Poly(ethylene imine) | Chitosan (High molecular weight); Epichlorohydrine; Acetic acid solution (>99%); Poly(ethylene imine) (30%) | 8.09 | 9.34 | 17.43 | [32] |
Chitosan/GLA/Graphite oxide | Chitosan (High molecular weight); Glutaraldehyde (50 wt% in water; Acetic acid solution (>99%); KMnO4 (>99.0%); Graphite flakes; H2SO4 (95%–98%); H2O2 (30wt%) | 1.88 | 13.72 | 15.60 | [33] |
Chitosan/GLA/FeCl2·4H2O, FeCl3·6H2O, Graphite | FeCl2·4H2O (p.a > 99.0%); Chitosan (High molecular weight); FeCl3·6H2O (reagent grade, 97%); Glutaraldehyde (50 wt% in water; Acetic acid solution (>99%); KMnO4 (>99.0%); Graphite flakes; H2SO4 (95%–98%); H2O2 (30 wt%) | 2.40 | 3.76 | 6.16 | [33] |
Chitosan/-/Succinic anhydride | Chitosan (High molecular weight); Acetic acid solution (>99%); Succinic anhydride; Methanol; Acetone | 7.65 | 14.24 | 21.89 | [34] |
Chitosan/EPI/Chlorosulfuric acid | Dichloroacetic acid (>99%); Formamide (>99.5%); Chitosan (High molecular weight); Epichlorohydrine; Acetic acid solution (>99%) | 3.22 | 9.68 | 12.90 | [35] |
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Gkika, D.A.; Liakos, E.V.; Vordos, N.; Kontogoulidou, C.; Magafas, L.; Bikiaris, D.N.; Bandekas, D.V.; Mitropoulos, A.C.; Kyzas, G.Z. Cost Estimation of Polymeric Adsorbents. Polymers 2019, 11, 925. https://doi.org/10.3390/polym11050925
Gkika DA, Liakos EV, Vordos N, Kontogoulidou C, Magafas L, Bikiaris DN, Bandekas DV, Mitropoulos AC, Kyzas GZ. Cost Estimation of Polymeric Adsorbents. Polymers. 2019; 11(5):925. https://doi.org/10.3390/polym11050925
Chicago/Turabian StyleGkika, Despina A., Efstathios V. Liakos, Nick Vordos, Christina Kontogoulidou, Lykourgos Magafas, Dimitrios N. Bikiaris, Dimitrios V. Bandekas, Athanasios C. Mitropoulos, and George Z. Kyzas. 2019. "Cost Estimation of Polymeric Adsorbents" Polymers 11, no. 5: 925. https://doi.org/10.3390/polym11050925
APA StyleGkika, D. A., Liakos, E. V., Vordos, N., Kontogoulidou, C., Magafas, L., Bikiaris, D. N., Bandekas, D. V., Mitropoulos, A. C., & Kyzas, G. Z. (2019). Cost Estimation of Polymeric Adsorbents. Polymers, 11(5), 925. https://doi.org/10.3390/polym11050925