化学
密度梯度
悬挂(拓扑)
粒子(生态学)
分析化学(期刊)
分辨率(逻辑)
分离过程
航程(航空)
磁选
磁铁
微塑料
色谱法
复合材料
材料科学
物理
环境化学
海洋学
数学
量子力学
人工智能
同伦
计算机科学
纯数学
冶金
地质学
作者
Xinpeng Ren,Michael C. Breadmore,Fernando Maya
标识
DOI:10.1021/acs.analchem.2c04001
摘要
A versatile method for the efficient separation of different types of microplastics from particle mixtures is presented. Magnetism-assisted density gradient separation (Mag-DG-Sep) relies on a bespoke separation cell connected to a gradient pump and located between two like-pole-facing neodymium magnets. In Mag-DG-Sep, particle mixtures initially sunk in water are subjected to a gradient of increasing concentration of MnCl2, enabling the sequential suspension and collection of particles with different densities. The suspension process is assisted by the paramagnetism of the MnCl2 solution placed between the two magnets, which contributes to focusing the ascending particles from the bottom of the separation cell to the outlet, thus enhancing the resolution of the separation process. To demonstrate the concept, a mixture of polyethylene (PE) polymer particles with a similar size range (180–212 μm) but different densities (ca. 0.98, 1.025, 1.08, and 1.35 g cm–3) was selectively separated in a single Mag-DG-Sep run. These particles were also efficiently separated when mixed with other types of particles, such as glass or soil. A generic linear MnCl2 gradient can be directly applied for sample screening covering a broad range of densities (0.98–2.20 g cm–3), while steps can be introduced in the gradient, increasing the separation resolution of particles with close densities (1.025–1.08 g cm–3). As a proof-of-concept application, Mag-DG-Sep facilitated sample preparation of microplastics present in a soil sample prior to their examination by attenuated total reflection Fourier-transform infrared spectroscopy.
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