Cotton-derived carbon aerogel used as binder-free CO2 adsorbent
ID:17 View Protection:ATTENDEE Updated Time:2026-08-21 21:55:25 Hits:0 Keynote speech

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Abstract
Natural cotton is a widely available and low-cost biomass resource with a high carbon content, making it an ideal precursor for carbon materials. In this work, H3PO4 was employed as a chemical activating agent to pretreat cellulose-rich natural cotton, and the effects of the H3PO4-to-cotton impregnation mass ratio and pyrolysis temperature on the pore structure and CO2 adsorption performance of the resulting carbon materials were systematically investigated. The results show that the optimal sample, CP1-900, exhibits the highest specific surface area of 1119.0 m2/g and a substantial micropore volume of 0.463 cm3/g, achieving a CO2 adsorption uptake of 2.715 mmol/g at 25 °C and 1 bar. In addition, the material can maintain an integrated structure without additional binders, offering practical advantages over conventional powdered adsorbents in shaping, handling, and potential applications.
Building on this material platform, the prepared carbon aerogel was further explored as an electrode for electrochemical charging treatment. This strategy enables control of the surface chemical environment and promotes the enrichment of active functional groups on the carbon surface, thereby strengthening interactions between the adsorbent and CO₂ molecules. As a result, the material exhibits enhanced CO2 adsorption capacity under low-concentration conditions, together with improved CO2/N2 adsorption selectivity, leading to the development of a novel functionalized carbon aerogel suitable for direct air capture (DAC). More importantly, owing to its intrinsic electrical conductivity, the carbon aerogel can be rapidly and directly heated through the Joule heating effect, enabling efficient in situ regeneration of the adsorbent while reducing heat-transfer losses associated with conventional external heating approaches. The integration of electrochemical surface regulation, selective low-concentration CO2 capture, and electrically driven Joule-heating regeneration provides a promising material and process platform for developing a new generation of low-carbon and energy-efficient DAC technologies powered by renewable electricity.
Keywords
CO2 adsorption,carbon aerogel,natural cotton,direct air capture,Joule heating
Speaker
Shuangjun Li
Professor Tianjin University

Submission Author
Shuangjun Li Tianjin University
Ki Bong Lee Korea University
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Important Date
  • Conference Date

    Nov 20

    2026

    to

    Nov 24

    2026

  • Aug 31 2026

    Draft paper submission deadline

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