0
Article Tier 2 Sign in to save

Performance evaluations of the state-of-the-art nano-enabled strategies for microplastic remediation

No summary available — this paper's abstract is not included in the open metadata provided by the publisher. Learn why →

More Papers Like This

Article Tier 2

Nano-based Remediation Strategies for Microplastic Pollution in the Environment

AI summary Read the abstract

Researchers reviewed nano-based remediation strategies — including photocatalytic nanomaterials, magnetic nanoparticles, and nano-adsorbents — as alternatives to conventional methods for removing microplastics from water and soil, finding they offer improved efficiency and selectivity for addressing widespread contamination.

Article Tier 2

Nanoparticle in Removal of Microplastics

AI summary Read the abstract

Scientists found that tiny particles made of nickel can soak up microplastics from water, removing up to 83% of them in lab tests. This matters because microplastics are showing up in our drinking water, food, and even our bodies, and this cheap, eco-friendly method could one day help water treatment plants filter them out before they reach our taps. That said, this is early-stage lab research, so more testing is needed before it becomes a real-world solution.

Article Tier 2

Advanced Nanomaterials for Microplastic Detection and Degradation: A Sustainable Approach to Environmental Remediation

AI summary Read the abstract

Researchers examined how advanced nanomaterials can be engineered to detect and degrade microplastics in the environment, presenting a sustainable remediation approach that leverages nanoscale properties to address the growing challenge of microplastic pollution across ecosystems.

Article Tier 2

Microplastic Degradation and Management Via Nanomaterials

AI summary Read the abstract

Researchers reviewed nanomaterial-based strategies for microplastic degradation and management, covering photocatalysis, adsorption, and membrane filtration approaches that exploit the high surface area and reactivity of engineered nanomaterials. These methods offer a path toward actively breaking down microplastics rather than simply capturing them, which is critical for reducing the long-term accumulation of plastic particles in ecosystems and human bodies.

Article Tier 2

Microplastics in aquatic environment: fate, human exposure, removal and advances of nanotechnology in remediation

AI summary Read the abstract

This review traces microplastic pathways from aquatic sources — including seafood, drinking water, and sea salt — through the human food chain, estimating up to 26,250 microplastic particles ingested per person annually from seafood alone, while also cataloging the toxic additives and co-transported heavy metals these particles carry. It evaluates physical, chemical, and biological removal methods before identifying nanotechnology-based approaches as the most promising next generation of water treatment for microplastic elimination.

Research digests by email

When a large batch of papers lands in the Atlas, we read through it and send a short write-up of what stood out.

Email me about

Share this paper