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February 23, 2026Journal of Chemical Technology & Biotechnology0 citations

Effective carbon dioxide adsorption in graphene oxide–piperazine‐modified Ni ‐ MOF ‐74 frameworks

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SZSyed Turab Haider ZaidiMBMohamad Azmi BustamAAAqeel Ahmad

Key Points

  • The study aims to improve CO2 adsorption in Ni-MOF-74 by modifying it with graphene oxide and piperazine to enhance stability and affinity for CO2.
  • Synthesis of GO@Ni-MOF-74/PZ composite via solvothermal method
  • Characterization of the composite to confirm integration of GO and PZ
  • Conducting Grand canonical Monte Carlo simulations for adsorption behavior analysis
  • Utilizing Langmuir, Freundlich, and Sips isotherm models for data evaluation
  • CO2 adsorption capacity increased from 4.5 mmol g-1 for pristine Ni-MOF-74 to 5.2 mmol g-1 for GO@Ni-MOF-74/PZ
  • Comprehensive characterization confirmed successful composite synthesis without crystallinity loss
  • Simulations matched well with experimental adsorption trends, revealing insights into the mechanism of CO2 capture.

Abstract

Abstract BACKGROUND The rising atmospheric CO 2 concentration, driven primarily by industrial emissions, has heightened the need for advanced carbon capture materials. Metal–organic frameworks (MOFs), particularly Ni‐MOF‐74, offer high CO 2 adsorption potential but suffer from structural fragility and limited performance under ambient conditions. To address these limitations, a GO@Ni‐MOF‐74/PZ composite was synthesized via a solvothermal method, incorporating graphene oxide (GO) to improve structural stability and piperazine (PZ) as a nitrogen‐rich functional agent to enhance CO 2 affinity. RESULTS Comprehensive characterization using various techniques confirmed the successful integration of GO and PZ without compromising MOF crystallinity, while significantly increasing surface area and micropore volume. The CO 2 adsorption capacity improved from 4.5 mmol g −1 for pristine Ni‐MOF‐74 to 5.2 mmol g −1 for GO@Ni‐MOF‐74/PZ at 1 bar and 25 °C. Grand canonical Monte Carlo simulations showed good agreement with experimental adsorption trends and relative uptake behavior, providing molecular‐level insights into the adsorption mechanism. Adsorption data were further analyzed using Langmuir, Freundlich and Sips isotherm models, enabling quantitative evaluation of site affinity, surface heterogeneity and maximum uptake capacity. CONCLUSION These results demonstrate that GO‐functionalized Ni‐MOF‐74 combined with amine‐based modification offers a promising pathway toward efficient and scalable CO 2 capture technologies. © 2026 Society of Chemical Industry (SCI).

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Cite This Study

Zaidi et al. (2026) studied this question.

synapsesocial.com/papers/699ba08472792ae9fd8704f9https://doi.org/10.1002/jctb.70151
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