用于高选择性吸附二氧化碳和乙炔的淀粉基炭微球

Starch-based carbon microspheres for highly selective adsorption of carbon dioxide and acetylene

  • 摘要: 为了开发环保节能的淀粉基炭微球(CMSs)作为金属有机框架和传统多孔炭的替代材料,并用于高效吸附和分离多种气体。以可溶性淀粉为碳源,采用水热法和热解法制备CMSs。采用FTIR、比表面积和孔径分析仪(BET)、XRD、SEM以及XPS对CMSs进行了表征。表征结果表明,CMSs 呈粒径较为均匀的球体,呈无定形结构并具有部分石墨碳,表面富含含氧官能团。其拥有微孔和介孔结构,平均孔径为3.388 nm,比表面积达532.598 m2·g−1。研究深入考察了CMSs对CO2、C2H2、CH4、N2、CO等气体的吸附性能,发现在273 K和298 K下,CMSs对C2H2和CO2的吸附量分别为3.58 mmol·g−1和3.47 mmol·g−1、2.76 mmol·g−1和2.61 mmol·g−1,而对CH4、N2、CO等气体的吸附量则远低于此。C2H2、CO2、CH4、N2和CO在CMSs上的吸附等温线能够较好地被DSL (Dual site Langmuir)模型拟合。利用理想溶液吸附理论(IAST)模型计算得出,CMSs对C2H2/CH4、CO2/CH4、CO2/N2、C2H2/CO2、CO2/CO等二元混合气体的吸附选择性均大于2,表明其可实现对上述5种二元混合气体的有效分离。

     

    Abstract: To develop environmentally friendly and energy efficient starch-based carbon microspheres (CMSs) as an alternative to metal-organic frameworks and conventional porous carbon and for efficient adsorption and separation of a wide range of gases, the CMSs were prepared by hydrothermal and pyrolysis methods using soluble starch as the carbon source. The CMSs were characterized by FTIR, specific surface area and pore size analyser (BET), XRD, SEM, and XPS. The results indicated that the prepared CMSs were spherical with relatively uniform particle size, possessing an amorphous structure and partial graphitic carbon, and were rich in oxygen-containing functional groups on the surface. The CMSs had microporous and mesoporous structures, with an average pore size of 3.388 nm and a specific surface area of 532.598 m2·g−1. The adsorption properties of CMSs for gases such as CO2, C2H2, CH4, N2, and CO were investigated. It was found that the adsorption amounts of CMSs for C2H2 and CO2 at 273 K and 298 K were 3.58 mmol·g−1 and 3.47 mmol·g−1, 2.76 mmol·g−1 and 2.61 mmol·g−1, respectively, while the adsorption amounts for CH4, N2, and CO were much lower. The adsorption isotherms of C2H2, CO2, CH4, N2, and CO on CMSs can be fitted well by the DSL (Dual site Langmuir) model. The adsorption selectivity of CMSs for binary gas mixtures such as C2H2/CH4, CO2/CH4, CO2/N2, C2H2/CO2 and CO2/CO was calculated using the ideal adsorption solution theory (IAST) theoretical model, and all the adsorption selectivities were greater than 2, indicating that CMSs could effectively separate the above five binary gas mixtures.

     

/

返回文章
返回