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首页> 外文期刊>Microporous and mesoporous materials: The offical journal of the International Zeolite Association >Preparing microporous carbon from solid organic salt precursors using in situ templating and a fixed-bed reactor
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Preparing microporous carbon from solid organic salt precursors using in situ templating and a fixed-bed reactor

机译:使用原位模板和固定床反应器从固体有机盐前体制备微孔碳

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摘要

Carbon-based adsorbents contain high internal surface area, desirable pore structure, and controlled surface functionalities, making them effective for gas purification, separation, and storage. This research describes a simple technique for preparing porous carbons from solid organic salt precursors and examines the physical and chemical properties of these materials. A two-step (i.e., pyrolysis and washing), fixed-bed system is used to synthesize high surface area carbon from solid organic salt precursors. The organic salts are pyrolyzed to remove reactive leaving groups (i.e., H2O, CO, CO2, and/or HC1). The remaining carbon atoms network around an in situ, solid salt template to develop internal porosity. Post-pyrolysis washing dissolves the salt template to isolate the remaining porous carbon products. Increased microporosity and surface area occur with this technique when compared to carbons prepared by a similar spray pyrolysis approach. Carbons prepared with the two-step method are >70% microporous and up to 740 m~2/g. Surface oxygen content of these carbons increases from 5% to 25% with decreasing pyrolysis temperature. This technique provides control over surface area and oxygen content of the carbon products, an important step towards tailoring the carbon's adsorption capacity for specific applications.
机译:碳基吸附剂具有较高的内表面积,理想的孔结构和受控的表面功能,从而使其对气体的净化,分离和存储有效。这项研究描述了一种从固体有机盐前体制备多孔碳的简单技术,并研究了这些材料的物理和化学性质。使用两步(即热解和洗涤)固定床系统从固体有机盐前体合成高表面积碳。将有机盐热解以除去反应性离去基团(即,H 2 O,CO,CO 2和/或HCl)。剩余的碳原子围绕原位固体盐模板网络化以形成内部孔隙。热解后的洗涤溶解盐模板以分离剩余的多孔碳产物。与通过类似的喷雾热解方法制备的碳相比,使用这种技术会增加微孔率和表面积。用两步法制备的碳具有> 70%的微孔且高达740 m〜2 / g。随着热解温度的降低,这些碳的表面氧含量从5%增加到25%。该技术可控制碳产品的表面积和氧含量,这是针对特定应用定制碳吸附能力的重要一步。

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