A Systematic Literature Review for Addressing Microplastic Fibre Pollution: Urgency and Opportunities
Abstract
:1. Introduction
2. Materials and Methods
2.1. Data Source
2.2. Methodology
3. Results
3.1. Publication Profile
3.2. Citation Network
3.3. Connection between Keywords
3.4. Summary of Each Research Domain
3.4.1. Domestic Laundry and Drying
Parameters | Articles | Effect on MPF/MF Release |
---|---|---|
Textile Parameters | ||
Structure | [62] | Increase with loose construction |
[55] | Reduce with compact to loose structure | |
[63] | Reduce as interlacing coefficient and weft density increase | |
Composition | [64] | Recycled polyester > virgin polyester |
[65] | Acrylic > polyester > nylon | |
Spinning method | [66] | Ring > rotor or air-jet |
Yarn twist | [62] | Reduce with higher twist |
[67] | Spun > non-twist filament > hard-twist filament | |
[55] | Reduce with a higher twist | |
Fibre length | [55] | Reduce with continuous filament over short staples |
[53] | Increased release with shorter irregular fibres | |
[68] | Reduce from staple to textured filament. | |
Finishing | [47] | Reduce with a pectin-based finish |
[66] | The processed surface can produce five times more | |
Cutting | [66] | Scissor-cut 3–31 times higher than laser-cut |
Washing and Drying Parameters | ||
Machine type | [59] | The top load releases seven times more than the front load |
Subsequent washes | [52] | Successive washes decrease emissions |
[69] | Reduce and typically stabilise from the 4th and 5th cycle | |
[61] | Reduce after 4 cycles | |
[53] | Reduce after the peak at 3rd cycle | |
[17] | Reduce and stabilise from 5th cycle | |
[67] | Reduce | |
[68] | Reduce significantly from 5th cycle | |
[70] | Reduce and stabilise at the 7th cycle | |
Water volume-to-fabric ratio/washing load decrease | [61] | Increase as the most influential factor |
[45] | Increase by five times | |
[60] | Increase as the most influential factor | |
Washing temperature | [46] | Increase with temperature |
[61] | No significant effect between 15 and 30 °C and increase at 60 °C | |
[71] | Increase with temperature | |
[70] | 1.8 times more if the temperature is increased from 20 to 40 °C | |
Washing and drying time | [61] | No impact if the increase is from 15 to 60 min |
[71] | Increase with duration and spin speed | |
[70] | Increase if duration increases from 30 to 60 min | |
Using detergent and softener | [52] | Reduce (both detergent and softener) |
[72] | Reduce (softener only) | |
[46] | Increase (detergent only) | |
[61] | No effect (detergent only) | |
[53] | Reduce (detergent only) | |
[73] | No significant impact (both detergent and softener) | |
[71] | Increase (detergent and conditioner) | |
[74] | Reduce (softener only) | |
[70] | Increase (detergent only) |
3.4.2. Test Methodology
3.4.3. Aquatic Ecosystem
3.4.4. Atmospheric Environment
3.4.5. Wastewater Source
3.4.6. Abundance and Distribution
3.4.7. Terrestrial Ecosystem
3.4.8. Hazardous Risk
4. Opportunities
4.1. Interdisciplinary Collaboration
4.2. Textile Parameters
4.3. Laundry Parameters
4.4. Sustainable Chemicals
4.5. Renewable Materials and Circularity
4.6. Wastewater Treatment
4.7. Mitigation Devices
4.8. Standardised Test Method
4.9. Government Interventions
5. Conclusions
5.1. Limitations
5.2. Outlook
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Keywords | No of Articles |
---|---|
TS = (microplastic*) | 8217 |
TS = (microplastic*) AND TS = (microfibre* or microfiber* or fibre* or fiber*) | 1939 |
TS = (microfibre* or microfiber*) AND TS = (textile* or clothing* or apparel* or fashion*) | 395 |
TS = (microplastic*) AND TS= (microfibre* or microfiber* or fibre* or fiber*) AND TS = (textile* or clothing* or apparel* or fashion*) | 219 |
Name of Journal | No of Publications | % |
---|---|---|
Science of the Total Environment | 34 | 16% |
Environmental Pollution | 27 | 12% |
Marine Pollution Bulletin | 22 | 10% |
Environmental Science Technology | 15 | 7% |
Environmental Science and Pollution Research | 14 | 6% |
Chemosphere | 9 | 4% |
Journal of Hazardous Materials | 8 | 4% |
PLoS ONE | 6 | 3% |
Frontiers in Marine Science | 4 | 2% |
Polymers | 4 | 2% |
Publication Countries | No of Publications | % |
---|---|---|
People’s Republic of China | 36 | 16% |
USA | 34 | 16% |
England | 27 | 12% |
Italy | 26 | 12% |
Canada | 15 | 7% |
Germany | 12 | 5% |
Spain | 12 | 5% |
Switzerland | 11 | 5% |
Australia | 9 | 4% |
Finland | 9 | 4% |
Group No | Colour | No of Publications | Research Domains |
---|---|---|---|
0 | NA | 6 | Scattered Samples |
1 | Blue | 85 | Domestic laundry and drying |
2 | Green | 28 | Test methodology |
3 | Purple | 22 | Aquatic ecosystem |
4 | Orange | 21 | Atmosphere environment |
5 | Yellow | 19 | Wastewater source |
6 | Brown | 17 | Abundance and distribution |
7 | Pink | 11 | Terrestrial ecosystem |
8 | Light Blue | 10 | Hazardous nature |
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Chan, C.K.-M.; Lo, C.K.-Y.; Kan, C.-W. A Systematic Literature Review for Addressing Microplastic Fibre Pollution: Urgency and Opportunities. Water 2024, 16, 1988. https://doi.org/10.3390/w16141988
Chan CK-M, Lo CK-Y, Kan C-W. A Systematic Literature Review for Addressing Microplastic Fibre Pollution: Urgency and Opportunities. Water. 2024; 16(14):1988. https://doi.org/10.3390/w16141988
Chicago/Turabian StyleChan, Carmen Ka-Man, Chris Kwan-Yu Lo, and Chi-Wai Kan. 2024. "A Systematic Literature Review for Addressing Microplastic Fibre Pollution: Urgency and Opportunities" Water 16, no. 14: 1988. https://doi.org/10.3390/w16141988
APA StyleChan, C. K. -M., Lo, C. K. -Y., & Kan, C. -W. (2024). A Systematic Literature Review for Addressing Microplastic Fibre Pollution: Urgency and Opportunities. Water, 16(14), 1988. https://doi.org/10.3390/w16141988