Submitted:
03 November 2025
Posted:
05 November 2025
You are already at the latest version
Abstract
Keywords:
1. Plastics and Microplastics
1.1. Definition of Plastics: Types and Properties
1.2. Plastic Production has More than Doubled in the Last Two Decades
1.3. Types of Microplastics
1.3.1. Primary Microplastics
1.3.2. Secondary Microplastics
1.4. Microplastics in the Environment—Source and Characteristics
1.5. -Main Sources of Microplastics and Their Distribution
1.6. Hazard and Risks Associated with the Release of Microplastics
1.6.1. Plastic Ingestion by Marine Biota
1.6.2. Plastic as a Source and a Vector of Potential Toxins
1.6.3. Microplastics and Derivatives in Marine Organisms
1.7. Adverse Effects on the Organisms Caused by Microplastic Ingestion
1.8. Microplastics and Domestic Wastewaters—The Critical Importance of Microfibers
2. Processes Associated with Microplastic Removal
2.1. Membrane Applications in Water Treatment
2.2. Membrane Filtration—Typology and Properties
2.3. Membrane Properties and Performances
2.3.1. Polymeric Membranes
2.3.2. Inorganic Membranes
3. Characterization of Different Membranes and Filtration Processes Involved in MP
3.1. Microfiltration Membranes
3.2. Ultrafiltration
3.3. Nanofiltration
3.4. Reverse Osmosis
3.5. Membrane Bioreactors
3.6. Dynamic Membranes Technology
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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| Categories | Molecular formula | Chemical structure | Common applications |
Specific Density (g/cm3) |
Recycle symbol |
| Polyethylene terephthalate (PET) | ![]() |
![]() |
Beverage bottles | 1.34–1.39 | ![]() |
| High-density polyethylene (HDPE) | ![]() |
![]() |
Containers for milk, motor oil, shampoos and conditioners, soap bottles, detergents, and bleaches | 0.933–1.27 | ![]() |
|
Polyvinyl chloride (PVC) |
![]() |
![]() |
Bags, tubes | 1.16–1.30 | ![]() |
| Low-density polyethylene (LDPE) | ![]() |
![]() |
Plastic bags, six-pack rings, bottles | 0.91–0.93 | ![]() |
|
Polypropylene (PP) |
![]() |
![]() |
Rope, bottle caps, netting | 0.90–0.92 | ![]() |
|
Polystyrene (PS) |
![]() |
![]() |
Cups, buoy Plastic utensils, food containers, packaging | 0.01–1.05 1.04–1.09 |
![]() |
|
Policarbonate (PC) |
![]() |
![]() |
Electronic compounds | 1.20–1.22 | ![]() |
|
Polyurethane (PU) |
![]() |
![]() |
Bedding, automotive and truck seating | 0.11-0.04 | |
|
Polyhydroxyalkanoates (PHA) |
![]() |
![]() |
Packaging, medicine or agriculture. | 1.0-1.3 | |
|
Polyhydroxybutyrate (PHB) |
![]() |
![]() |
Applications in medical sector, packaging industries, nanotechnology and agriculture. | 1.18 -1.26 | |
|
Polylactic acid (PLA) |
![]() |
![]() |
Medical implants, food packaging and fibers for clothing. | 1.27 | |
| Polycaprolactone (PCL) |
![]() |
![]() |
Packaging, scaffolds, prosthetics, sutures, drug delivery, films, carry bags | 1.145 | |
| Polyamide (PA) |
![]() |
![]() |
Ropes | 1.13–1.15 | |
| Cellulose Acetate (CA) |
(C10H16O8)n | ![]() |
Filter cigarettes | 1.22–1.24 | |
| Polytetrafluoroethylene (PTFE) |
(C2F4)n | ![]() |
Teflon items, tubes | 2.10–2.30 |
| Substances | Marine biota | References |
| Microplastics | Phytoplankton | [116] |
| Microplastics and phthalates | Planktons | [117,118] |
| Microplastics | Gastropods | [119] |
| Microplastics | Oysters and mussels | [120,121] |
| Microplastics | Crab | [122,123] |
| Microplastic | Norway lobster | [124] |
| Plastics/ Microplastics | Fish | [125,126,127,128] |
| Plastics | Turtles | [129,130] |
| Phthalates | Whale | [118] |
| Plastic | Whale | [131] |
| Plastic-derived substances (brominated congeners e.g., PBDEs) | Seabirds | [132] |
| PDMS, silicones | Seabirds | [133] |
| Microplastics | Humans (Placenta ex vivo) |
[134] |
| Microplastics | Humans (Airway smooth muscle cell) |
[135] |
| Microplastics | Humans (Endothelial cells—blood vessels) |
[136] |
| Adverse effects | Organisms / Class of Organisms | References |
| Alterations in photosynthesis, oxidative stress. | Algae—Chlorella and Scenedesmus | [116] |
| Negative impact on health. | Zooplankton | [137] |
| Alterations in embryonic development. | Sea urchin—Lytechinus variegatus | [138] |
| Bioaccumulation of chemical pollutants from plastic and hepatic stress. | Fish—Oryzias latipes | [100] |
| Reduction of the stomach space, leading gradually to starvation. | Birds and marine biota | [139] |
| Clog digestive paths and cause injuries and infections that could result in death. | Marine worms | [93,132,140,141] |
| Hindered acetylcholinesterase enzymatic activity (potential issues in seafood safety as this effect has been linked to Alzheimer’s disease in humans). | Marine biota | [142,143,144] |
| Alterations on endocrine disruption (Ingestion of plastic with plastic-derived compounds or sorbed from the ambient environment such as PBDEs). | Marine organisms’ tissues | [115,132,145] |
| Alterations on the hormonal system. (Bisphenol-A) | Fish and other marine organisms | [146] |
| Growth rate reduction, reproductive failure. | Fish and other marine organisms | [147] |
| Translocation out of the digestive system pancreas, liver or gill. | Bivalve and fish | [122,148] |
| Developmental abnormalities in embryos as well as interference in reproduction. | Fish | [149] |
| Membrane Type | Reverse Osmose | Nanofiltration | Ultrafiltration | Microfiltration |
| Membrane | Assimetric | Assimetric | Assimetric | Simetric Assimetric |
| Porosity | < 0.002 μm | < 0.002 μm | 0.2–0.02 μm | 4–0.02 μm |
| Membrane material | Cellulose Acetate, Thin film |
Cellulose Acetate, Thin film |
Ceramic Material, Polysulfone, Polyvinylidene Fluoride, Cellulose Acetate, Thin film |
Ceramic material, Polysulfone, Polyvinylidene Fluoride |
| Membrane module | Tubular, espiral, plane-and-frame |
Tubular, spiral, plane-and-frame |
Tubular, hollow fiber, spiral, plane-and-frame |
Tubular, hollow fiber |
| Operational pressure |
15–150 bar | 5–35 bar | 3–10 bar | ˂ 2 bar |
| Retained Material | High molecular weight components (e.g., proteins) sodium chloride, glucose and aminoacids |
High molecular weight components (e.g., proteins), mono- and bivalent ions, oligosaccharides and negative polyvalent ions |
Virus, polysaccharides proteins and macromolecules |
Clay particles and bacteria |
| Filtration membrane |
Treatment plant Type/Location |
Membrane characteristics | MP abundance in effluent (MP/L) |
Removal efficiency (%) |
References |
| MF | Laboratory | Material: PVDF and Pore size 0.1 μm | - | Up to 91 | [203] |
| MF | Laboratory | Material: PC and Pore size: 5 μm Material: CA and Pore size: 5 μm Material: PTFE and Pore size: 5 μm |
33 000–127 000 8 000–27 000 46 000–47 000 |
96.8–99.6 a 94.3–99.8 a 96–99.6 a |
[186] |
| MF | WTP /Indonesia | Pore size: 0.05 μm | 5 | 81.5 | [204] |
| MF | Laboratory | Material: SiC support and SiC membrane, maximum pore size: 604 nm | 1,250 | 98,5 | [205] |
| MF | WWTP/ Germany | Pore size: 0.1 μm | 0.67 μg/L | ˃ 94 | [206] |
| UF | WWTP/ Iran | Material: PVDF and PET, Pore size: 0.1 μm | 0–2 | 98.1-100 | [207] |
| UF | Laboratory | Material: PES, MWCO: 100 kDa | - | Up to 96 | [203] |
| UF | LLTP/ China | - | ~ 0.1 | 75 | [208] |
| UF | Laboratory | Material: SiC support and ZrO2 membrane, maximum pore size: 74 nm | 450 | 99.2 | [205] |
| UF | WTP/ Indonesia | Pore size: 0,07 μm | 22 | 37.1 | [204] |
| UF | Laboratory | Material: PVDF, Pore size: 30 nm, module: flat sheet | 0 | 100 | [209] |
| UF | WWTP/Thailand | Material: PES/PVP blend, pore size: 0,1 μm | 2,33 | 78,16 | [210] |
| UF | LLTP/ Turkey | - | 6,5 | 96 |
[211] |
| NF | LLTP/ Turkey | - | ~ 10 2 |
96 99 |
[211] |
| NF | DWTP/ France | Material: poly piperazine-amide and PSF MWCO: 400 Da, Pore size: 0,1 nm | 0–0.018 | - | [212] |
| RO | DWTP/ Spain | - | 0.06 | 54 ± 27 | [213] |
| RO | LLTP/ China | Pore size: 0.1 nm | 0.4 | ~ 99.8 | [214] |
| RO | WWTP/ Australia | - | 0.21 | - | [215] |
| MBR sludge | WWTP/ Italy | Pore size: 0.04 μm Module: hollow fiber submerged UF |
81.1 × 103 (MP/kg) |
- | [216] |
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