A review on CO2 capture over novel adsorbents: Progress in robust zeolite adsorbent development


  • H. U. Hambali Department of Chemical Engineering, University of Ilorin
  • T. Jimoh
  • T. L. Peng Department of Chemical Sciences, Faculty of Science and Technology, Universiti Kebangsaan Malaysia, UKM, 43600 Bangi, Selangor, Malaysia.
  • A. A. Umar Department of Chemical Engineering, King Fahd University of Petroleum and Minerals, Dhahran 31261, Saudi Arabia.
  • B. T. Mutiullah Department of Chemical Engineering, University of Ilorin
  • J. A. Okolie Engineering Pathways, Gallogly College of Engineering, University of Oklahoma, Norman, OK73019, USA


CO2 capture, Adsorbents, Zeolite, Adsorption, nanostructured, CO2 capture, Adsorbents, Zeolite, Adsorption, Porous


Indubitably, the combustion of fossils fuels has really hampered the preservation of the environment as it raises the content of CO2 in the atmosphere which consequentially results in global warming. Adsorption process remains the popular technique owing to its cost-effectiveness, faster reaction rates and flexible design. This review detailed the research progress in preparation of modified zeolite-based and novel adsorbents towards enhanced CO2 capture. In addition, the review presents an overview on available techniques of capturing CO2 and mechanism of reaction. Large surface area, distinctive mechanical characteristics and uniform dispersion of the exchangeable cations in the porous framework is prerequisite for high adsorption capacity and stability over zeolite materials. Novel nanostructured and polymeric zeolite composite materials seem promising because they offer solutions to energy-related problems while also contributing to environmental preservation. It is anticipated that this review could offer a conclusive roadmap in the pursuit of a cost-effective, industrially potent adsorbent suited for enhance CO2 capture.


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