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Magnetically Induced Aggregation of Iron Oxide Nanoparticles for Carrier Flotation Strategies

ACS Applied Materials & Interfaces 2021 38 citations ? Citation count from OpenAlex, updated daily. May differ slightly from the publisher's own count. Score: 40 ? 0–100 AI score estimating relevance to the microplastics field. Papers below 30 are filtered from public browse.
Sebastian P. Schwaminger, Sebastian P. Schwaminger, Sebastian P. Schwaminger, Karin Schwarzenberger, Jacqueline Gatzemeier, Jacqueline Gatzemeier, Zhe Lei, Kerstin Eckert

Summary

Researchers synthesized iron oxide nanoparticles and investigated their magnetically induced aggregation behavior for use in carrier flotation strategies, aiming to develop new process concepts for separating target materials including contaminants from water.

On the nanoscale, iron oxides can be used for multiple applications ranging from medical treatment to biotechnology. We aimed to utilize the specific properties of these nanoparticles for new process concepts in flotation. Magnetic nanoparticles were synthesized by alkaline coprecipitation, leading to a primary particle size of 9 nm, and coated with oleate. The nanomaterial was characterized for its superparamagnetism and its colloidal stability at different ionic strengths, with and without an external magnetic field. The nanomaterial was used for model experiments on magnetic carrier flotation of microplastic particles, based on magnetically induced heteroagglomeration. We were able to demonstrate the magnetically induced aggregation of the nanoparticles which allows for new flotation strategies. Since the nanomaterial has zero remanent magnetization, the agglomeration is reversible which facilitates the process control. Magnetic carrier flotation based on iron oxide nanoparticles can pave the way to promising new recycling processes for microplastic wastes.

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