Papers

61,005 results
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Article Tier 2

Biofilm facilitates metal accumulation onto microplastics in estuarine waters

This study demonstrated that biofilm colonization on microplastics in estuarine waters significantly enhanced their sorption of metals such as copper and zinc, suggesting biofouling changes the contaminant-carrying capacity of plastic debris.

2019 The Science of The Total Environment 241 citations
Article Tier 2

Seawater copper content controls biofilm bioaccumulation and microbial community on microplastics

Researchers found that seawater copper concentration controls both the microbial community composition of biofilms on microplastics and the amount of copper bioaccumulated in those biofilms, demonstrating that metal pollution levels in seawater influence the ecological and chemical behavior of the 'plastisphere'.

2021 The Science of The Total Environment 30 citations
Article Tier 2

Adsorption of heavy metals by biofilm-coated microplastics in aquatic environments: Mechanisms, isotherm and kinetic processes, and influencing factors

This review synthesizes research on how biofilms—microbial coatings that naturally form on microplastics in water—alter the particles' ability to absorb heavy metals like lead, copper, and cadmium, finding that biofilmed microplastics generally adsorb more metal than bare plastic and that electrostatic forces and surface complexation are the dominant mechanisms. This matters because microplastics coated in both biofilm and toxic metals may deliver a double dose of contamination to organisms that ingest them. The review identifies key gaps, including how competitive metal mixtures and shifting biofilm composition over time affect this combined pollution risk.

2026 The Science of The Total Environment
Article Tier 2

Enhanced copper adsorption by polyamide and polylactic acid microplastics: The role of biofilm development and chemical aging

Researchers studied how chemical aging and biofilm growth on polyamide and polylactic acid microplastics changed their ability to absorb copper from water. Both processes significantly increased the surface area and chemical reactivity of the plastics, making them absorb substantially more copper than fresh microplastics. The study suggests that as microplastics age and develop biofilms in natural waterways, they become increasingly effective at concentrating heavy metals, potentially altering how these contaminants move through aquatic environments.

2025 Environmental Research 11 citations
Article Tier 2

Biofilm colonization on non-degradable and degradable microplastics change the adsorption of Cu(II) and facilitate the dominance of pathogenic microbes

Researchers studied how biofilm growth on both degradable and non-degradable microplastics alters their ability to absorb copper from water. They found that aging and biofilm colonization significantly increased the adsorption capacity of both polyamide and polylactic acid microplastics for copper ions. The study also revealed that biofilm-covered microplastics harbored a higher proportion of potentially pathogenic microbes, raising concerns about microplastics as vectors for both heavy metals and harmful bacteria.

2025 Environmental Research 8 citations
Article Tier 2

Effects of biofilm on metal adsorption behavior and microbial community of microplastics

Researchers found that biofilm development on polystyrene microplastics enhanced their ability to adsorb copper and lead more than UV aging alone, with biofilm altering both the adsorption mechanisms and microbial community composition on the plastic surfaces.

2021 Journal of Hazardous Materials 125 citations
Article Tier 2

Copper Adsorption to Microplastics and Natural Particles in Seawater: A Comparison of Kinetics, Isotherms, and Bioavailability

Researchers compared copper adsorption onto pristine and aged microplastics versus natural particles like algae and sediments in seawater, finding that natural particles generally had higher metal-sequestering capacity, challenging the emphasis on microplastics as dominant metal-transport vectors.

2021 Environmental Science & Technology 132 citations
Article Tier 2

Adsorption properties and influencing factors of Cu(II) on polystyrene and polyethylene terephthalate microplastics in seawater

Researchers investigated how polystyrene and polyethylene terephthalate microplastics adsorb copper ions in seawater, characterizing adsorption kinetics and influencing factors to understand microplastics' role as vectors for heavy metal pollutants in marine environments.

2021 The Science of The Total Environment 126 citations
Article Tier 2

Exaggerated interaction of biofilm-developed microplastics and contaminants in aquatic environments

Researchers found that biofilm formation on microplastic surfaces exaggerates the adsorption and vector capacity for co-contaminants in aquatic environments, with biofilm-coated MPs showing substantially higher uptake of contaminants than pristine MPs.

2023 Chemosphere 3 citations
Article Tier 2

Increased Cu(II) Adsorption Onto UV-Aged Polyethylene, Polypropylene, and Polyethylene Terephthalate Microplastic Particles in Seawater

Researchers found that UV aging significantly increased copper(II) adsorption onto polyethylene, polypropylene, and polyethylene terephthalate microplastics in seawater by up to 2.92 times after 12 months, with oxidation-induced surface changes and smaller particle sizes amplifying this effect for PP and PET.

2021 Frontiers in Marine Science 35 citations
Article Tier 2

The role of microplastics biofilm in accumulation of trace metals in aquatic environments

This review examines how biofilms that form on microplastics in aquatic environments enhance the accumulation of trace metals from surrounding water. Researchers found that microorganisms colonizing plastic surfaces produce extracellular substances that facilitate metal sorption, effectively turning microplastics into concentrated carriers of metallic contaminants. The study highlights the dual pollution risk posed by microplastics serving as both physical pollutants and vehicles for toxic metal transport in waterways.

2022 World Journal of Microbiology and Biotechnology 62 citations
Article Tier 2

Insights into adsorption behavior and mechanism of Cu(II) onto biodegradable and conventional microplastics: Effect of aging process and environmental factors

Researchers compared how biodegradable and conventional microplastics adsorb copper ions from water, examining how aging processes and environmental factors influence this interaction. The study found that aged microplastics had a greater capacity to bind copper than fresh ones, suggesting that weathered plastic debris in the environment may serve as carriers for heavy metal contaminants.

2023 Environmental Pollution 39 citations
Review Tier 2

Research progress on the role of biofilm in heavy metals adsorption-desorption characteristics of microplastics: A review

This review examines how biofilm formation on microplastics in aquatic environments modifies their properties and changes how they adsorb and release heavy metals. Researchers found that biofilm-covered microplastics behave significantly differently than bare microplastics, which has important implications for understanding the combined environmental risks of microplastics and heavy metal contamination.

2023 Environmental Pollution 53 citations
Article Tier 2

The potential of polyethylene microplastics to transport copper in aquatic systems: Adsorption and desorption studies

Researchers investigated the adsorption and desorption of copper (II) ions onto polyethylene microplastics in aquatic systems, varying operational parameters such as equilibrium time, pH, temperature, and initial metal concentration. They found that polyethylene microplastics can act as vectors for copper transport in water, with sorption behavior governed by multiple physicochemical factors.

2022 Water Environment Research 14 citations
Article Tier 2

Adsorption and Desorption Behavior of Microplastics on Copper Ions in Aqueous Solution

This study investigated how microplastics of different types and surface chemistry adsorb and release copper ions in water. The findings show that microplastics can pick up and later release heavy metals depending on environmental conditions, acting as vectors that transport toxic metals through aquatic ecosystems.

2023 Academic Journal of Materials & Chemistry 1 citations
Article Tier 2

Laboratoty Experiment on Copper and Lead Adsorption Ability of Microplastics

Researchers conducted a 7-day laboratory experiment examining the adsorption of copper and lead onto microplastic fragments derived from plastic straws and grocery bags in spiked seawater, finding both plastics adsorbed both metals with increasing concentrations over time. Plastic bag fragments adsorbed more of both metals than straw fragments, likely due to higher surface area, confirming the vector role of microplastics for heavy metal transport in marine systems.

2022 Sains Malaysiana 16 citations
Article Tier 2

Effects of Biofilms on Trace Metal Adsorption on Plastics in Freshwater Systems

Researchers incubated polypropylene and PET plastic debris in three freshwater bodies for 45 days to develop biofilms, then conducted batch adsorption experiments, finding that biofilm formation significantly increased trace metal adsorption capacity -- particularly for lead -- with adsorption well described by the Langmuir model.

2022 International Journal of Environmental Research and Public Health 17 citations
Article Tier 2

Metals' Adsorption Onto Environmental Microplastics at Shoreline Sediments

Metal adsorption onto microplastics collected from shoreline environments was measured, revealing that weathered plastic particles accumulate heavy metals like lead, copper, and zinc. The results confirm that shoreline microplastics act as metal-enriched vectors that could pose risks to organisms ingesting them.

2025 X-Ray Spectrometry 1 citations
Article Tier 2

Microplastics as an emerging anthropogenic vector of trace metals in freshwater: Significance of biofilms and comparison with natural substrates

Scientists placed virgin polystyrene microplastics in a eutrophic urban lake and a drinking water reservoir for four weeks to allow biofilm development, then measured trace metal accumulation, finding that biofilm-coated microplastics accumulated significantly more metals than virgin plastics or natural substrates.

2020 Water Research 301 citations
Article Tier 2

Metal leaching from plastics in the marine environment: An ignored role of biofilm.

Researchers investigated how biofilms on marine plastics influence metal leaching, finding that microbial colonization significantly alters the release rates of metal additives from common polymers, representing a previously underappreciated pathway for heavy metal transfer from plastic debris into marine ecosystems.

2023 Environment international
Article Tier 2

Colonization characteristics and surface effects of microplastic biofilms: Implications for environmental behavior of typical pollutants

This review examines how bacteria colonize microplastic surfaces in water, forming biofilms that change how the plastics behave in the environment. These biofilms alter the surface properties of microplastics and affect how they absorb and transport heavy metals and other pollutants. Understanding biofilm formation on microplastics is important because it can make the particles more dangerous by concentrating toxic substances that could eventually enter the food chain.

2024 The Science of The Total Environment 65 citations
Article Tier 2

Monitoring of biofilm development and physico-chemical changes of floating microplastics at the air-water interface

Researchers monitored biofilm development on floating polyethylene microplastics and found that biofilm growth increased particle density, metal adsorption capacity (52% higher for lead), and surface cracking, but did not cause the particles to sink even after 12 weeks.

2023 Environmental Pollution 43 citations
Article Tier 2

Sequential interfacial contributions of microplastics to microbial adhesion and metal adsorption

Researchers uncovered the mechanistic sequence of interactions between microplastics, microorganisms, and metals in aquatic environments, finding that microbial adhesion to microplastic surfaces precedes and facilitates subsequent metal adsorption through temporal interfacial processes.

2025 The Science of The Total Environment
Article Tier 2

Interaction of microplastics with metal(oid)s in aquatic environments: What is done so far?

This review assembled the mechanisms by which microplastics sorb hazardous metals and metalloids in aquatic environments, examining how weathering, biofilm formation, and environmental conditions influence the transport and bioavailability of these contaminants.

2022 Journal of Hazardous Materials Advances 36 citations