以多孔粘土异质结构为模板的蔗糖合成活性炭吸附CO2

J.A. Cecilia , E. Vilarrasa-García , N. Chouikhi , R. Morales-Ospino , S. Besghaier , M. Chlendi , M. Bagane , M. Bastos-Neto , D.C.S. Azevedo , E. Rodríguez-Castellón
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引用次数: 2

摘要

本文分析了以蔗糖为碳源,以多孔粘土异质结构为模板,促进孔隙分层组织的微孔材料的合成,这是碳质材料合成中的一种新方法。该研究包括对合成条件的评价,如碱(KOH)的添加或热解温度(600、750和900℃)的变化。通过X射线衍射、透射电镜、气体吸附、衰减全反射、拉曼光谱和X射线光电子能谱对材料进行了表征。此外,还评估了合成吸附剂在三种温度(0、25和45°C)下的CO2吸收性能,并与文献中报道的类似材料进行了比较。结果表明,在不同的评价温度下,碱的使用和最高热解温度(900℃)对CO2的吸附都有促进作用。尽管如此,在最低的热解温度,即600°C时,可以观察到有碱合成的材料比没有添加KOH得到的材料性能更突出。
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Activated carbons synthesized from sucrose using porous clay heterostructures as template for CO2 adsorption

In this work we have analyzed the synthesis of microporous materials using sucrose as carbon source and porous clay heterostructures as template to promote a hierarchical organization of pores, which is a novelty in the synthesis of carbonaceous materials. The study comprises the evaluation of the synthesis conditions such as the addition of a base (KOH) or the variation of the pyrolysis temperature (600, 750 and 900 °C). The studied materials were characterized via X ray diffraction, Transmission Electron Microscopy, gas adsorption, Attenuated Total Reflectance, Raman spectroscopy and X-ray Photoelectron Spectroscopy. Additionally, the performance of the synthesized adsorbents in terms of CO2 uptake at three temperatures (0, 25 and 45 °C) was assessed and compared with similar materials reported in the literature. The results suggested by and large that the use of the base and the highest pyrolysis temperature (900 °C) during the synthesis enhances the CO2 adsorption at the different evaluated temperatures. Nonetheless, it is at the lowest pyrolysis temperature i.e., 600 °C, where one can observe a more accentuated superior performance of the material synthesized with base than that obtained without the addition of KOH.

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