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March 27, 2026Nanomaterials3 citationsOpen Access

Different Magnetization Levels of Magnetite–Chitosan Nanocomposites for Co (II) Adsorption from Natural Waters

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SŠSergej ŠemčukŽJŽivilė JurgelėnėVPVidas Pakštas

Key Points

  • The aim is to evaluate the effectiveness of magnetite-chitosan nanocomposites in adsorbing Co (II) from different aquatic environments.
  • Synthesis of magnetite-chitosan nanocomposites with varying Fe3O4 loadings (10-30 wt. %)
  • Characterization using techniques like TEM, FTIR, AFM, XRD, and Mössbauer spectroscopy
  • Assessment of Co (II) adsorption across seawater and freshwater
  • Utilization of adsorption isotherm models and sorption kinetics analysis.
  • Achieved optimal magnetization of 11 emu/g at 20 wt. % Fe3O4
  • Maximum adsorption capacities of 14.93 mg/g in seawater and 11.95 mg/g in freshwater
  • Equilibrium for adsorption reached within 120 minutes.

Abstract

Biopolymers such as chitosan are considered important candidates for water purification due to their non-toxicity, biodegradability, natural origin, biocompatibility, and potential for modification to provide additional capabilities, such as incorporating nanomaterials for magnetism to enable rapid separation or adding functional groups to enhance selectivity towards target adsorbates. This study investigated adsorption of Co (II), traced by Co-60 radionuclide, systematically evaluated in natural aquatic matrices selected according to water body type: seawater (Baltic Sea) and freshwater systems further distinguished as lentic (Lake Balsys) and lotic (Neris River) environments, using synthesized magnetite–chitosan nanocomposites (MCNs) with varying loadings of Fe3O4 (10–30 wt. %) nanoparticles providing different levels of magnetization. Comprehensive characterization (TEM, FTIR, AFM, XRD, and Mössbauer spectroscopy) confirmed successful integration of magnetite nanoparticles within the chitosan matrix and reproducible structural properties. An optimal magnetization of 11 emu/g was achieved at 20 wt. % Fe3O4, enabling rapid magnetic separation within <1 min without compromising sorption capacity. Adsorption isotherm models were applied to investigate the adsorption parameters, and sorption kinetics were studied, yielding a maximum adsorption capacity of 14.93 mg/g for MCN-10 in seawater and 11.95 mg/g for MCN-20 in freshwater with observed equilibrium within 120 min. These promising results indicate that the MCN is a suitable nanocomposite for the removal of Co (II) ions and the Co-60 radionuclide from aquatic media.

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Cite This Study

Šemčuk et al. (2026) studied this question.

synapsesocial.com/papers/69c6204c15a0a509bde18bc8https://doi.org/10.3390/nano16070393
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