4.7 Article

Effect of magnetic field on nano-magnetite composite exhibits in ion-adsorption

期刊

SCIENCE OF THE TOTAL ENVIRONMENT
卷 780, 期 -, 页码 -

出版社

ELSEVIER
DOI: 10.1016/j.scitotenv.2021.146337

关键词

Nano-magnetite; Nanocomposite; Ion-adsorption; Silica gel matrix; Magnetic alignment

资金

  1. UCSI University under PSIF grant (Pioneer Scientist Incentive Fund) [Proj-In-FETBE-018]
  2. MOHE (Ministry of Higher Education, Malaysia) [FRGS/1/2016/TK02/UCSI/02/1]

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Nano-magnetites are widely studied for their potential as adsorbents, but their efficiency is often hindered by agglomeration. A nanocomposite of nano-magnetites embedded in a porous silica gel matrix was created in this study, showing improved adsorption performance. Applying a magnetic field further enhanced adsorption capacity of the nanocomposite, offering potential applications in various processes involving ion-adsorptions.
Nano-magnetites are widely researched for its potential as an excellent adsorbent in many applications. However, the efficiency of the nano-magnetites are hindered by their tendency to agglomerate. In this work, we dispersed and embedded the nano-magnetites in a porous silica gel matrix to form a nanocomposite to reduce the extent of agglomeration and to enhance the adsorption performance. Our experimental results showed that the removal efficiency of Cu2+ ion has improved by 46% (22.4 +/- 2.2%) on the nano-magnetite-silica-gel (NMSG) nanocomposite as compared to pure nano-magnetites (15.3 +/- 0.6%). The adsorption capacity is further enhanced by 39% (from 11.2 +/- 1.1 to 15.6 +/- 1.6 mg/g) by subjecting theNMSG to amagnetic field prior to adsorption. We infer that the magnetic field aligned the magnetic domains within the nano-magnetites, resulting in an increased Lorentz force during adsorption. Similar alignment of magnetic domains is near to impossible in pure nano-magnetites due to severe agglomeration. We further found that the adsorption capacity of the NMSG can be manipulated with an external magnetic field by varying the strength and the configurations of the field. Equipped with proper process design, our finding has great potentials in processes that involve ion-adsorptions, for example, NMSG can: (i) replace/reduce chemical dosing in controlling adsorption kinetics, (ii) replace/reduce complex chemicals required in ion-chromatography columns, and (iii) reduce wastage of nano-adsorbents by immobilizing it in a porous matrix. (C) 2021 Elsevier B.V. All rights reserved.

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