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June 4, 2026Industrial & Engineering Chemistry Research0 citations

Systematic Optimization of N-Doped Hierarchical Porous Carbon from Liquefied Wood for Efficient Volatile Organic Compound Adsorption

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WJW W JiangXFXuran FanZDZhongde Dai

Key Points

  • This research aims to develop sustainable carbon adsorbents from liquefied wood for effective volatile organic compound (VOC) adsorption.
  • Synthesis of N-doped hierarchical porous carbons from liquefied wood using melamine-assisted carbonization.
  • Implementation of Na2CO3/K2CO3 activation to adjust the Na/K ratio for tuning pore architecture.
  • Dynamic adsorption tests to evaluate the performance of carbon adsorbents under varying humidity conditions.
  • BPC-Na5K5 achieved a saturated toluene adsorption capacity of 592 mg/g at 25 °C and 1000 mg/m3.
  • Retention of 94% of dry-state adsorption capacity at 50% relative humidity was noted.
  • Preferential toluene retention over other VOCs, indicating effective selective adsorption properties.

Abstract

Volatile organic compounds (VOCs) are hazardous air pollutants, and the development of sustainable carbon adsorbents with high capacity, humidity tolerance, and regenerability remains an important challenge. Herein, N-doped hierarchical porous carbons were synthesized from liquefied wood via melamine-assisted carbonization followed by a Na2CO3/K2CO3 activation strategy. By adjusting the Na/K ratio, the pore architecture and surface nitrogen configuration of the resulting carbons were systematically tuned. Among the prepared samples, BPC-Na5K5 exhibited the most balanced textural and surface properties, with a high specific surface area (2338 m2/g), a large micropore volume (1.117 cm3/g), and a substantial mesopore contribution (0.464 cm3/g). Under dynamic adsorption conditions, BPC-Na5K5 delivered a saturated toluene adsorption capacity (qe) of 592 mg/g at 25 °C and 1000 mg/m3 and retained 94% of its dry-state qe at 50% relative humidity, together with good regeneration stability. Binary VOC adsorption tests further demonstrated preferential toluene retention over acetone, ethyl acetate, and cyclohexane, accompanied by roll-up of the weaker adsorbates. Comparative analysis suggests that the superior performance arises from the cooperative effect of micropore-dominated adsorption space, mesopore-assisted mass transport, and surface chemistry that modulates aromatic VOC affinity. This work provides a practical mixed-carbonate tuning strategy for systematically optimizing hierarchical porosity and nitrogen configuration in liquefied-wood-derived porous carbons toward efficient VOC adsorption and removal.

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Cite This Study

Jiang et al. (2026) studied this question.

synapsesocial.com/papers/6a211852d499ed480b170ec7https://doi.org/10.1021/acs.iecr.6c01949
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