Recent Purification Technologies and Human Health Risk Assessment of Microplastics
Abstract
:1. Introduction
2. Origin of Microplastics
3. Current Technologies Used for MP Purification
3.1. Biological Degradation of MPs
3.2. Coagulation
3.3. Filtration using Membranes
3.4. Extraction of MPs Using NPs
4. Current Technologies Used for MP Detection and Quantification Risk Assessment
4.1. MP Identification and Detection
4.2. MP Quantification
5. Current Technologies used for MP Risk Assessment
5.1. Toxicity of MPs/NPs in Human Cells
5.2. Toxicity of MPs/NPs in Mice and Rats
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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MP Purification Technologies | MPs Used | Size | Removal Efficiency | Advantages | Limitations | Ref |
---|---|---|---|---|---|---|
Filtration | Wastewater, surface water | 100–5000 µm | 88.1% |
|
| [7] |
wastewater | 20 μm–4.75 mm | 97.2% | [6] | |||
PES, PET, PA, PE, PP | <5 mm | 99.3% | [8] | |||
Biological degradation | PE | 250–1000 μm | 43% |
|
| [9] |
PE, PP, PET, PS | 75 μm | 1.6–7.4% | [10] | |||
Electro coagulation | PE | - | >90% |
|
| [15] |
Chemical coagulation | PE | <5 mm | <90.9% |
|
| [43] |
PE, PS | 180 nm–125 μm | <13.6% | [52] | |||
PET, PE, PP, PAM | 1–100 μm | 40.5–54.5% | [53] | |||
Extraction | PP, PE, PTFE, PET | 5–100 µm | 67–77% |
|
| [16] |
PS, PE, PET, PVC | 10–5000 µm | 93% | [18] | |||
PS, seawater | 100–200 nm | 95.5% | [54] |
Identification Method | Feature | Resolution | Application |
---|---|---|---|
Microscopy |
| <100 µm | - |
Microscopy (+ FTIR/Raman) a |
| <1 µm | Major or typical plastic types |
FTIR spectroscopy b |
| <10 µm | Well-known spectra can identify microplastics and polymer types. |
Raman spectroscopy b |
| <1 µm | Using molecular structure and atoms, identify microplastics and polymer types. |
Thermal analysis |
| <10 µm | PE, PP, PVC, PS, PA, PET and chlorinated or chlorosulfonated PE |
Classification | Size | Accumulated Tissue | Toxicological, Pathological, and Behavioral Changes | References |
---|---|---|---|---|
Detection of significant toxicological and pathological changes | ||||
PS | 5 and 20 μm | Gut, liver, and kidney |
| [19] |
PS | 0.5 and 50 μm | - |
| [22] |
PS and PE + OPFRs a | 0.5–1.0 μm | Gut and liver |
| [93] |
PS | 5 μm | Gut |
| [94] |
PS | 5 and 20 μm | Gut, liver, and kidney |
| [95] |
PS | 0.5 and 5 μm | - |
| [96] |
PS | 10–150 μm | - |
| [97] |
PS | 5 μm | - |
| [98] |
No detection of significant toxicological and pathological changes | ||||
PS | 0.025 and 0.05 μm | - |
| [23] |
PS | 1, 4 and 10 μm | - |
| [55] |
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Park, J.W.; Lee, S.J.; Hwang, D.Y.; Seo, S. Recent Purification Technologies and Human Health Risk Assessment of Microplastics. Materials 2020, 13, 5196. https://doi.org/10.3390/ma13225196
Park JW, Lee SJ, Hwang DY, Seo S. Recent Purification Technologies and Human Health Risk Assessment of Microplastics. Materials. 2020; 13(22):5196. https://doi.org/10.3390/ma13225196
Chicago/Turabian StylePark, Jun Woo, Su Jin Lee, Dae Youn Hwang, and Sungbaek Seo. 2020. "Recent Purification Technologies and Human Health Risk Assessment of Microplastics" Materials 13, no. 22: 5196. https://doi.org/10.3390/ma13225196
APA StylePark, J. W., Lee, S. J., Hwang, D. Y., & Seo, S. (2020). Recent Purification Technologies and Human Health Risk Assessment of Microplastics. Materials, 13(22), 5196. https://doi.org/10.3390/ma13225196