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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Oxygen functionalized porous activated biocarbons with high surface area derived from grape marc for enhanced capture of CO2 at elevated-pressure
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Oxygen functionalized porous activated biocarbons with high surface area derived from grape marc for enhanced capture of CO2 at elevated-pressure

机译:具有高表面积的氧官能化多孔活化生物羰基衍生自葡萄MARC,以提高升高压力捕获CO2

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摘要

This research demonstrates the conversion of grape marc into highly carbonaceous and oxygen functionalized porous activated biocarbons (PABs) with a high specific area for CO2 capture. The materials are synthesized using KOH activation at 800 degrees C and show a high content of micropores and high specific surface areas which can be easily manipulated by varying the amount of KOH. The optimized material PAB3 obtained using KOH/grape marc biochar ratio of 3 displays the highest specific surface area (2473 m(2) g(-1)), high micropore volume (0.72 cm(3) g(-1)) and a pore diameter of 0.74 nm. Owing to its highly developed porosity and excellent textural parameters, PAB3 exhibits a high CO2 adsorption of 6.2 mmol g(-1) at 0 degrees C/1 bar and 26.8 mmol g(-1) at 0 degrees C/30 bar. It is often considered challenging to synthesize a CO2 adsorbent with all-round performance for CO2 capture under diverse conditions of temperature and pressure. The optimized material PAB3 is also found to be thermally stable which when coupled with its superior CO2 capture performance presents a promising candidature in the field of carbon capture. Furthermore, the excellent features of the synthesized material suggest that these materials could be extended to several other adsorption related fields. (C) 2020 Elsevier Ltd. All rights reserved.
机译:该研究表明将葡萄MARC转化为高碳质和氧官能化的多孔活化生物碳酸(PAB),具有高特异性的CO 2捕获。在800℃下使用KOH活化合成材料,并显示高含量的微孔和高比表面积,可以通过改变KOH的量来容易地操纵。使用KOH /葡萄MARC生物炭比的优化材料PAB3显示出最高的比表面积(2473m(2)g(-1)),高微孔体积(0.72cm(3)g(-1))和a孔径为0.74nm。由于其高发达的孔隙率和优异的纹理参数,PAB3在0℃/ 1巴的高CO 2吸附6.2mmol G(-1)和26.8mmol G(-1),在0℃/ 30巴。在不同圆形的温度和压力条件下,通常认为合成CO 2吸附剂的CO 2吸附剂的挑战性致力于挑战。还发现优化的材料PAB3热稳定,当加上其优异的CO2捕获性能时,在碳捕获领域中呈现了有希望的候选。此外,合成材料的优异特征表明这些材料可以扩展到几个其他吸附相关领域。 (c)2020 elestvier有限公司保留所有权利。

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