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April 29, 2026ChemCatChem3 citations

Synthesis of Efficient Carbonic Anhydrase‐Fe‐MOF Composite for Enhancing CO 2 Capture

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RARahaf AbdullahSKShabnam KhanAKAmjad Khalil

Key Points

  • This research aims to improve carbonic anhydrase's efficiency and stability for CO2 capture by using a metal-organic framework.
  • Synthesis of NH2-MIL-101(Fe) metal-organic framework for enzyme immobilization.
  • Characterization of the composite using techniques like XRD, FTIR, and SEM.
  • Assessment of enzyme loading, retention of activity, and thermal stability over multiple reuse cycles.
  • Achieved 80% retention of catalytic function post-immobilization.
  • Demonstrated enhanced thermal stability of the enzyme.
  • The composite maintained 40% of its activity after six reuse cycles.

Abstract

ABSTRACT The increasing concentration of atmospheric carbon dioxide (CO 2 ), primarily from fossil fuel combustion, poses a significant environmental threat and necessitates effective capture technologies. Carbonic anhydrase (CA), a zinc‐containing metalloenzyme, has garnered attention for its exceptional catalytic efficiency in accelerating CO 2 hydration. However, its industrial application is limited by thermal instability, short operational lifespan, and poor reusability. This study investigates the immobilization of CA onto the biocompatible metal‐organic framework, NH 2 ‐MIL‐101(Fe) to enhance enzyme stability and reusability for CO 2 capture applications. The MOF was synthesized and characterized by XRD, FTIR, BET, SEM, TEM, TGA, and EDX. Enzyme loading and immobilization efficiency were quantified, yielding a loading of 0.0394 mg CA/mg MOF and an immobilization efficiency of 60%. Activity assays demonstrated an 80% retention of catalytic function post‐immobilization. Thermal stability tests showed significantly improved enzyme resilience at elevated temperatures, and the composite retained 40% of its activity after six reuse cycles. In CO 2 capture experiments, the CA/MOF composite achieved a CaCO 3 yield comparable to that of free CA, with the added benefit of enhanced operational stability. This study confirms that NH 2 ‐MIL‐101(Fe) is a promising support for CA immobilization, enabling efficient and reusable biocatalytic CO 2 capture systems with potential for scalable environmental applications.

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Cite This Study

Abdullah et al. (2026) studied this question.

synapsesocial.com/papers/69f1547f879cb923c4944b0ahttps://doi.org/10.1002/cctc.70749
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