烧焦
热解
吸附
比表面积
乙苯
微型多孔材料
体积热力学
BTEX公司
化学工程
化学
多孔性
碳酸钾
活性炭
材料科学
萃取(化学)
挥发性有机化合物
作者
Maria Luisa Feo,Francesca Scalera,Massimiliano Frattoni,Valerio Paolini,Ettore Guerriero,Robert C. Pullar,Clara Piccirillo
标识
DOI:10.1016/j.apsusc.2025.165273
摘要
• A bone char material was prepared by pyrolysis of tuna fish bones. • Activation performed with K 2 CO 3 resulted in a powder with very high surface area. • The powder was very effective for VOCs adsorption especially for o- xylene. • The efficiency was very high also in humid conditions. • The powder could be reused more times with limited decrease in the efficiency. Air pollution is a problem of great concern, with increasing atmospheric concentrations of toxic Volatile Organic Compounds (VOCs) such as BTEX (benzene, toluene, ethylbenzene and o- xylene). We report the development of adsorbant materials derived from tuna fish bones. Tuna Bone Char ( TBC ) was obtained with a pyrolysis process; and activated with K 2 CO 3 treatment (indicated as KTBC, due to the potassium carbonate activation). Characterisation showed that the activation protocol led to a significant increase in the surface area – from 97.45 to 1826.59 m 2 /g for TBC and KTBC ; furthermore, the activated material also showed higher porosity (total pore volume of 2.22 cm 3 /g, micropore volume of 0.38 cm 3 /g). BTEX dynamic adsorption tests showed KTBC excellent adsorption properties, particularly with o -xylene (adsorption capacity q of 147 mg/g). The higher adsorption of o -xylene was explained considering its kinetic diameter matching KTBC pore size dimension. KTBC also showed to be very efficient in humid conditions (q = 61.2 mg/g). Repeated tests with the same powder indicated a 20 % decrease after the first cycle, with no further decrease in additional cycles. Empirical regression models for q 0 and k Th (Thomas model), and τ and K YN (Yoon-Nelson model) were developed for BTEX breakthrough curves and showed agreement with experimental breakcurve data (R 2 > 0.905). These results show that bone char can be used for gaseous pollutants with the activation playing a key role in surface modification and performance enhancement. This research offers a sustainable and effective route to convert marine biowaste into advanced adsorbents for VOC and air pollution control.
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