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Production of microporous biochars by single-step oxidation: Effect of activation conditions on CO2 capture

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  • Plaza, M.G.
  • González, A.S.
  • Pis, J.J.
  • Rubiera, F.
  • Pevida, C.

Abstract

There is an urgent need to develop materials and processes that reduce the energy penalty associated to the CO2 capture step. Biochars are appealing adsorbents for post-combustion CO2 capture applications due to their low cost, stability in moisture conditions and microporous nature. Series of carbon adsorbents were prepared from almond shells and olive stones by single-step activation with air at 400–500°C, and with lower O2 concentration in the activating gas, 3–5%, at higher temperatures (500–650°C). This process entails energy savings compared to conventional activation with carbon dioxide or steam. It has been found that the pore size distribution can be tailored by adequately selecting the activating conditions. Carbons obtained under lower oxygen partial pressures and higher temperatures present narrow microporosity, which is essential for the adsorption of CO2 at low partial pressures. These appealing low-cost adsorbents have competitive CO2 working capacities and high CO2/N2 equilibrium selectivity in conditions that can be considered representative for post-combustion CO2 capture, thus showing potential for this application.

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  • Plaza, M.G. & González, A.S. & Pis, J.J. & Rubiera, F. & Pevida, C., 2014. "Production of microporous biochars by single-step oxidation: Effect of activation conditions on CO2 capture," Applied Energy, Elsevier, vol. 114(C), pages 551-562.
  • Handle: RePEc:eee:appene:v:114:y:2014:i:c:p:551-562
    DOI: 10.1016/j.apenergy.2013.09.058
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    11. Plaza, M.G. & Durán, I. & Rubiera, F. & Pevida, C., 2015. "CO2 adsorbent pellets produced from pine sawdust: Effect of coal tar pitch addition," Applied Energy, Elsevier, vol. 144(C), pages 182-192.
    12. Huang, Yu-Fong & Chiueh, Pei-Te & Shih, Chun-Hao & Lo, Shang-Lien & Sun, Liping & Zhong, Yuan & Qiu, Chunsheng, 2015. "Microwave pyrolysis of rice straw to produce biochar as an adsorbent for CO2 capture," Energy, Elsevier, vol. 84(C), pages 75-82.
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    15. Heo, Young-Jung & Park, Soo-Jin, 2015. "A role of steam activation on CO2 capture and separation of narrow microporous carbons produced from cellulose fibers," Energy, Elsevier, vol. 91(C), pages 142-150.
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    17. Md Sumon Reza & Shammya Afroze & Kairat Kuterbekov & Asset Kabyshev & Kenzhebatyr Zh. Bekmyrza & Md Naimul Haque & Shafi Noor Islam & Md Aslam Hossain & Mahbub Hassan & Hridoy Roy & Md Shahinoor Islam, 2023. "Advanced Applications of Carbonaceous Materials in Sustainable Water Treatment, Energy Storage, and CO 2 Capture: A Comprehensive Review," Sustainability, MDPI, vol. 15(11), pages 1-56, May.
    18. Bamdad, Hanieh & Hawboldt, Kelly & MacQuarrie, Stephanie, 2018. "A review on common adsorbents for acid gases removal: Focus on biochar," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P2), pages 1705-1720.
    19. Yaumi, A.L. & Bakar, M.Z. Abu & Hameed, B.H., 2017. "Recent advances in functionalized composite solid materials for carbon dioxide capture," Energy, Elsevier, vol. 124(C), pages 461-480.

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    Keywords

    CO2 capture; Adsorption; Biochar; Carbon;
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