Extraction-Based Pretreatment of End-of-Life Plastics from Waste Electrical and Electronic Equipment for Brominated Flame Retardant Removal and Subsequent Valorization via Pyrolysis
Abstract
:1. Introduction
2. Materials and Methods
2.1. Materials
2.2. Methods
2.2.1. Analytical Methods
2.2.2. Chemical Recycling Method—Pyrolysis
2.2.3. Soxhlet Extraction Method
3. Results
3.1. Chemical Characteristics of the Samples—FTIR Results
3.2. Thermal Characteristicsof the Samples—EGA Results
3.3. XRF Results and Debromination Efficiency
3.4. Thermal Pyrolysis Results
3.5. DSC Results
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Sample Category | Samples | Sample Name | |
---|---|---|---|
Computer peripheral equipment | Mouse | MS | |
Keyboard | KB | ||
Remote controls | Television remote | RC1 | |
Television remote | RC2 | ||
Television remote | RC3 | ||
Television remote | RC4 | ||
PlayStation remote | RC5 | ||
Telephones and accessories | Mobile phone | MP | |
Wireless phone | WP | ||
Earphones | EP | ||
Miscellaneous household equipment | Bathroom ventilator | VENT | |
Iron | IR | ||
Plug | PL | ||
Lamp | LAM |
Sample Name | Tmax (°C) | Bromine Content (ppm) |
---|---|---|
MS | 443 | 2630 ± 154 |
KB | 394 | 0 |
RC1 | 433 | 0 |
RC2 | 436 | 0 |
RC3 | 439 | 1100 ± 69 |
RC4 | 432 | 0 |
RC5 | 434 | 2300 ± 131 |
MP | 489 | 0 |
WP | 426 | 0 |
EP | 432 | n.a. * |
VENT | 420 | 0 |
IR | 523 | 0 |
PL | 517 | 0 |
LAM | 459 | 0 |
Sample Name | Solvent: Isopropanol | Solvent: Butanol | ||
---|---|---|---|---|
ppm Br | % Br Reduction | ppm Br | % Br Reduction | |
MS | 729 ± 42 | 72 | 408 ± 22 | 85 |
RC3 | 428 ± 25 | 61 | BDL * | 100 |
RC5 | 669 ± 40 | 71 | 654 ± 37 | 72 |
Peak | Retention Time (min) | Compound |
---|---|---|
KB (computer peripheral equipment) | ||
1 | 0.59 | Acrylonitrile |
2 | 0.96 | Methyl methacrylate |
3 | 2.40 | Styrene |
4 | 12.70 | 2-Heptenoic acid, 7-(methylenecyclopropyl)-, methyl ester |
5–6 | 14.50; 14.73 | 2-Methyl-4-phenyl-butyric acid, methyl ester |
7 | 15.36 | Pentadecanoic acid, 14-methyl-, methyl ester |
8 | 15.59 | Cyclohexane, 1-ethenyl-3-methylene-5-(1-propenylidene)- |
9 | 15.86 | 1,6-Heptadiene, 2-methyl-6-phenyl- |
MS (computer peripheral equipment) and RC2 and RC3 (remote controls) | ||
1 | 3.00 | Styrene |
2 | 13.41 | 3-Butynylbenzene |
3 | 20.22 | Cyclohexane, 1,3,5-triphenyl- |
RC1, RC4 and RC5 (remote controls); WP and EP (telephones and accessories); and VENT (miscellaneous household equipment) | ||
1 | 2.92 | Styrene |
2 | 8.97 | Propanedinitrile, (1-methylethenyl)(phenylmethyl)- |
3 | 13.41 | 3-Butynylbenzene |
4 | 15.01 | 4-Isopropylphenylacetonitrile |
5 | 17.33 | 7-Ethyl-1,3,5-cycloheptatriene |
6 | 17.78 | 4-Isopropylphenylacetonitrile |
7 | 18.02 | [1-(3-Phenyl-3-butenyl)cyclopropyl]benzene |
8 | 20.07 | Cyclohexane, 1,3,5-triphenyl- |
MP (telephones and accessories) and IR (miscellaneous household equipment) | ||
Peak | Retention Time (min) | Compound |
1 | 8.61 | Phenol, p-tert-butyl- |
2 | 15.25 | Phenol, 4-(1-methyl-1-phenylethyl)- |
3 | 18.40 | Bisphenol A |
4 | 20.03 | Cyclohexane, 1,3,5-triphenyl- |
PL (miscellaneous household equipment) | ||
1 | 4.38 | Phenol |
2 | 7.67 | p-Isopropylphenol |
3 | 8.53 | Phenol, p-tert-butyl- |
4 | 8.89 | 2-(2-Propenyl)-phenol |
5 | 18.49 | Bisphenol A |
LAM (miscellaneous household equipment) | ||
1–3 | 8.16; 8.38; 10.90 | 1-Undecene, 7-methyl- |
4 | 11.74 | Cyclohexane, 3-ethyl-5-methyl-1-propyl- |
5–7 | 13.34; 13.65; 13.98 | 1-Undecene, 7-methyl- |
8 | 14.09 | Cyclohexane, 1,1′-(1,2-dimethyl-1,2-ethanediyl)bis- |
9–10 | 15.50; 15.76 | Cyclooctacosane |
11 | 16.22 | Cyclopentane, 1,2-dibutyl- |
12 | 18.16 | Cyclohexane, 1,3,5-trimethyl-2-octadecyl- |
13–14 | 19.92; 21.56 | Cyclooctane, 1-methyl-3-propyl- |
15 | 23.08 | Cyclohexane, 1,3,5-trimethyl-2-octadecyl- |
16 | 24.49 | Cyclooctane, 1-methyl-3-propyl- |
17–19 | 25.81; 27.18; 29.07 | 1-Cyclopentyleicosane |
Sample Category | Samples | Sample Name | Polymer Type |
---|---|---|---|
Computer peripheral equipment | Mouse | MS | HIPS |
Keyboard | KB | ABS/PMMA | |
Remote controls | Television remote | RC1 | ABS |
Television remote | RC2 | HIPS | |
Television remote | RC3 | HIPS | |
Television remote | RC4 | ABS | |
PlayStation remote | RC5 | ABS | |
Telephones and accessories | Mobile phone | MP | PC |
Wireless phone | WP | ABS | |
Earphones | EP | ABS | |
Miscellaneous household equipment | Bathroom ventilator | VENT | ABS |
Iron | IR | PC | |
Plug | PL | PC | |
Lamp | LAM | PP |
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Charitopoulou, M.-A.; Papadimitriou, M.; Papadopoulou, L.; Achilias, D.S. Extraction-Based Pretreatment of End-of-Life Plastics from Waste Electrical and Electronic Equipment for Brominated Flame Retardant Removal and Subsequent Valorization via Pyrolysis. Processes 2025, 13, 1458. https://doi.org/10.3390/pr13051458
Charitopoulou M-A, Papadimitriou M, Papadopoulou L, Achilias DS. Extraction-Based Pretreatment of End-of-Life Plastics from Waste Electrical and Electronic Equipment for Brominated Flame Retardant Removal and Subsequent Valorization via Pyrolysis. Processes. 2025; 13(5):1458. https://doi.org/10.3390/pr13051458
Chicago/Turabian StyleCharitopoulou, Maria-Anna, Maria Papadimitriou, Lambrini Papadopoulou, and Dimitriοs S. Achilias. 2025. "Extraction-Based Pretreatment of End-of-Life Plastics from Waste Electrical and Electronic Equipment for Brominated Flame Retardant Removal and Subsequent Valorization via Pyrolysis" Processes 13, no. 5: 1458. https://doi.org/10.3390/pr13051458
APA StyleCharitopoulou, M.-A., Papadimitriou, M., Papadopoulou, L., & Achilias, D. S. (2025). Extraction-Based Pretreatment of End-of-Life Plastics from Waste Electrical and Electronic Equipment for Brominated Flame Retardant Removal and Subsequent Valorization via Pyrolysis. Processes, 13(5), 1458. https://doi.org/10.3390/pr13051458