Production of activated carbons from corn cobs waste by steam or H3PO4 activation for effective CO2 capture and industrial gas selectivity towards CO2/CH4/N2
Artikel i vetenskaplig tidskrift, 2026

This study compares physically and chemically activated carbons (ACs) derived from corn cobs for CO2 capture, focusing on their adsorption performance, selectivity and stability. Chemically activated AC-CC-C-800 exhibited the highest CO2 adsorption capacity, reaching 7.46 mmol/g at 1 bar and 25 °C and with a specific surface area of 1678 m2/g. In contrast, physically activated AC-CC-P-800 showed lower adsorption equal to 5.59 mmol/g but a more uniform pore structure with a specific surface area of 1546 m2/g, maintaining a high stability over 30 adsorption–desorption cycles. While chemical activation produced a higher microporosity, it required strong activating agents, making the process less environmentally friendly and generating chemical waste. Physical activation, using only steam at high temperatures, resulted in cleaner production with lower environmental impact while maintaining sufficient CO2 adsorption capacity and selectivity. Structural analysis using X-ray spectroscopy (XRD), Raman spectroscopy, and Scanning Electron Microscopy (SEM) confirmed the differences in porosity and surface properties between both methods. CO2/CH4/N2 gas selectivity in industrial applications were analyzed, including steel industry emissions, steam gasification and ammonia production. The findings highlight that physically activated ACs, despite slightly lower adsorption, offer a more sustainable and scalable solution for industrial CO2 capture, balancing efficiency with eco-friendly processing.

Activated carbon

Gas selectivity

Corn cobs

Biomass waste

CO2 capture

Författare

Kanagat Kishibayev

Al Farabi Kazakh National University

Bartosz Dziejarski

Politechnika Wrocławska

Chalmers, Kemi och kemiteknik, Energi och material

Chalmers, Rymd-, geo- och miljövetenskap, Energiteknik

Rustam Tokpayev

Al Farabi Kazakh National University

Tamina Khavaza

Al Farabi Kazakh National University

Zair Ibraimov

Al Farabi Kazakh National University

Maksat Yergeshov

Al Farabi Kazakh National University

Mikhail Nauryzbayev

Al Farabi Kazakh National University

Joanna Sreńscek Nazzal

West Pomeranian University of Technology

Jarosław Serafin

Universitat de Barcelona

Institut de Nanociencia i Nanotecnologia

Fuel

0016-2361 (ISSN)

Vol. 404 136266

Ämneskategorier (SSIF 2025)

Materialkemi

Styrkeområden

Materialvetenskap

DOI

10.1016/j.fuel.2025.136266

Mer information

Senast uppdaterat

2025-08-07