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March 5, 2026Discover Nano16 citationsOpen Access

Recent advances in functionalized nanocarbon adsorbents for toxic pollutant removal: challenges and future perspectives

STSanjana TewariJKJasvinder KaurSTShivanshi Tandon

Key Points

  • This review aims to assess advancements in functionalized carbon nanomaterials for removing toxic pollutants, particularly heavy metal ions.
  • Systematic evaluation of carbon nanomaterials, including graphene oxide, carbon nanotubes, biochar, and activated carbon.
  • Comparative analysis of surface functionalization effects on adsorption mechanisms and behaviours.
  • Discussion of recent developments in composite adsorbents, such as GO-polymer hybrids and MOFs-carbon composites.
  • Identified critical roles of functional groups like oxygen, nitrogen, and sulfur in enhancing adsorption efficiency.
  • Highlighted improvements in selectivity, reusability, and stability of multifunctional composite adsorbents.
  • Outlined research gaps and potential strategies to enhance carbon nanomaterials for practical applications.

Abstract

The increasing release of toxic pollutants into water bodies, especially heavy metal ions (HMs), poses severe environmental and health challenges. Among various remediation techniques, adsorption using functionalized carbon nanomaterials has emerged as an efficient and sustainable approach due to their high surface area, tunable porosity, and diverse surface functionalities. This review systematically evaluates recent advancements in the synthesis, surface functionalization, and adsorption behaviour of carbon-based nanomaterials such as graphene oxide (GO), carbon nanotubes (CNTs), biochar (BC), and activated carbon (AC) for the removal of HMs. Particular attention is given to the roles of oxygen-, nitrogen-, and sulfur-containing functional groups in enhancing adsorption via mechanisms such as electrostatic interactions, ion exchange, surface complexation, redox transformation, and precipitation. The novelty of this review lies in its focused and comparative analysis of how specific surface functional groups influence distinct adsorption mechanisms, capacities, and kinetic/isotherm behaviours across various carbonaceous nanomaterials. Additionally, it highlights recent advancements in multifunctional composite adsorbents such as GO-polymer hybrids, Metal organic frameworks (MOFs)-carbon composites, and metal oxide-functionalized BC that offer synergistic improvements in selectivity, reusability, and stability. By identifying current research gaps and synthesizing recent findings, this review provides a strategic framework for designing next-generation carbon nanomaterials for practical applications in wastewater treatment and environmental remediation.

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Cite This Study

Tewari et al. (2026) studied this question.

synapsesocial.com/papers/69a91e2cd6127c7a504c1e84https://doi.org/10.1186/s11671-026-04473-1
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