4.7 Article

Holey Ti3C2 nanosheets based membranes for efficient separation and removal of microplastics from water

Journal

JOURNAL OF COLLOID AND INTERFACE SCIENCE
Volume 617, Issue -, Pages 673-682

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jcis.2022.03.055

Keywords

Microplastics; Holcy Ti(3)C(2)Tx; Membrane; Removal efficiency

Funding

  1. National Natural Science Foundation of China [21975113, 22006061, 51962018]
  2. Innovation and Entrepreneurship Talent Project of Lanzhou [2020-RC-9, 2019-RC-2]
  3. Industrial Support Project of Edu-cation Department of Gansu Province [2021CYZC-01]

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This study presents the preparation of holey Ti(3)C(2)Tx membranes for efficient removal of microplastics from wastewater. The membranes exhibit a planar porous structure with nano-holes, resulting in high water flux and excellent microplastic removal performance. The h-Ti(3)C(2)Tx membranes show great potential for practical applications in the separation and removal of various contaminants from water.
The accumulation of non-degradable microplastics (MPs) originated from the mass production and huge consumption of plastics of modern industry in the water environment has resulted in severe pollution problems globally. Herein, we report for the first time the preparation of holey Ti(3)C(2)Tx (h-Ti(3)C(2)Tx) membranes obtained by etching Co3O4 nanoparticles embedded on Ti(3)C(2)Tx nanosheets followed by simple vacuum filtration using polymeric membranes as supporting matrix for efficient removal of MPs from wastewater. The h-Ti(3)C(2)Tx nanosheets exhibit a planar porous structure which present nano-holes with an average hole-size of 25 nm in diameter, which facilitated the construction of membranes with better water flux for the separation of MPs. Using fluorescent PS (FP) microspheres of different diameters as microplastic models, the obtained h-Ti(3)C(2)Tx membranes exhibited extremely high MPs removal performance (up to 99.3% under our conditions). Moreover, a large water flux of 196.7 L h(-1) m(-2) k Pa-1 can be obtained, which can compete or be larger than that of most of the membranes composed of untreated two-dimension nanomaterials. Due to the physicochemical stability, tremendous large water reflux, and the high MPs removal efficiency of h-Ti(3)C(2)Tx membranes, there may be a great potential for practical applications in the separation and removal of various contaminants such as MPs or suspended solids from water. (c) 2022 Elsevier Inc. All rights reserved.

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