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用于载体浮选策略的氧化铁纳米颗粒的磁诱导聚集

Magnetically Induced Aggregation of Iron Oxide Nanoparticles for Carrier Flotation Strategies.

作者信息

Schwaminger Sebastian P, Schwarzenberger Karin, Gatzemeier Jacqueline, Lei Zhe, Eckert Kerstin

机构信息

Bioseparation Engineering Group, Department of Mechanical Engineering, Technical University of Munich, Boltzmannstraße 15, 85748 Garching, Germany.

Institute of Fluid Dynamics, Helmholtz-Zentrum Dresden-Rossendorf, 01328 Dresden, Germany.

出版信息

ACS Appl Mater Interfaces. 2021 May 5;13(17):20830-20844. doi: 10.1021/acsami.1c02919. Epub 2021 Apr 22.

Abstract

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.

摘要

在纳米尺度上,氧化铁可用于从医学治疗到生物技术等多种应用。我们旨在利用这些纳米颗粒的特殊性质开发浮选新工艺概念。通过碱性共沉淀法合成了磁性纳米颗粒,其初级粒径为9纳米,并用油酸进行了包覆。对该纳米材料在有无外部磁场情况下的超顺磁性及其在不同离子强度下的胶体稳定性进行了表征。基于磁诱导异质凝聚,将该纳米材料用于微塑料颗粒的磁性载体浮选模型实验。我们能够证明纳米颗粒的磁诱导聚集,这使得新的浮选策略成为可能。由于该纳米材料的剩余磁化强度为零,聚集是可逆的,这有利于过程控制。基于氧化铁纳米颗粒的磁性载体浮选可为微塑料废物的新型回收工艺开辟一条充满希望的道路。

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