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April 19, 2026BioNanoScience2 citationsOpen Access

Advancements in Nanomaterial-Enhanced Biochar for Microplastic Remediation: A Comprehensive Review of Environmental Impact and Remediation Strategies

AKAmjid KhanTQTauqeer Ahmed QadriVRVishnu D. Rajput

Key Points

  • The aim is to assess the effectiveness of nanomaterial-enhanced biochar for removing microplastics and nanoplastics from the environment.
  • Conducted a comprehensive review of current remediation techniques and their limitations.
  • Examined mechanisms of nanomaterial-enhanced biochar in microplastic adsorption.
  • Recommended standardized ecotoxicity assessments and AI-driven synthesis for improved applications.
  • Identified key technical challenges, including low removal efficiency and high secondary pollution risks.
  • Highlighted innovative solutions, such as graphene oxide-functionalized biochar and magnetic separation.
  • Provided actionable recommendations for transitioning technologies from laboratory to industrial-scale applications.

Abstract

Microplastics (MPs) and nanoplastics (NPs) pollution represents a critical environmental crisis, yet conventional remediation techniques are frequently constrained by low removal efficiencies and high secondary-pollutant risks. This review critically evaluates nanomaterial-enhanced biochar as a superior, synergistic solution to these limitations. We identify the primary technical challenges in current remediation, specifically the kinetic barriers of sub-micron particle capture and the recovery of spent adsorbents from complex aquatic matrices. The key contribution of this work lies in detailing the transition from general adsorption to precision-engineered nano-interfaces, highlighting mechanisms such as π-π electron donor-acceptor interactions, Fe3O4-driven magnetic separation, and Reactive Oxygen Species (ROS)-mediated catalytic degradation. We further analyze hybrid innovations, including graphene oxide-functionalized biochar and enzyme-immobilized composites, which bridge the gap between physical entrapment and chemical mineralization. To facilitate the transition from laboratory-scale proof-of-concept to industrial restoration, we provide three main recommendations: (1) the adoption of standardized ecotoxicity assessments for spent nano-composites to prevent secondary contamination; (2) the development of AI-driven synthesis for polymer-specific biochar targeting; and (3) the integration of circular-economy frameworks to valorize agricultural waste into high-value remediation tools. By synthesizing recent advancements, this review provides a strategic roadmap for the scalable deployment of nano-biochar technologies in wastewater treatment and soil remediation.

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Cite This Study

Khan et al. (2026) studied this question.

synapsesocial.com/papers/69e47193010ef96374d8de69https://doi.org/10.1007/s12668-026-02541-5
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