Effect of microwave modification on activated carbon and its adsorption of methanol

被引:0
|
作者
Li, Li-Qing [1 ]
Liang, Xin [1 ]
Yao, Xiao-Long [1 ]
Li, Hai-Long [1 ]
Ma, Wei-Wu [1 ]
Liu, Sa [1 ]
机构
[1] School of Energy Science and Engineering, Central South Univ, Changsha, Hunan 410083, China
关键词
Methanol - Specific surface area - Activated carbon - Microwave irradiation - Pore size - Integral equations - Infrared spectroscopy;
D O I
暂无
中图分类号
学科分类号
摘要
Activated carbon (AC) was modified with microwave irradiation at 600, 700 and 800°Crespectively. Specific surface area and pore size analyzer, Boehm titration and Fourier transformed infrared spectroscopy were used to measure the physicochemical properties of the activated carbons. Fixed-bed adsorption experiments were conducted at 10°C with methanol as the adsorbate. The research shows that, after microwave modification, the specific surface area and total pore volume of activated carbons decrease slightly, but the micropore specific surface area increases remarkably. With the rise of temperature, large numbers of surface acidic functional groups of activated carbons resolve and surface basic functional groups are formed gradually. Both the Langmuir equation and Freundlich equation can well describe the adsorption of methanol on the activated carbons. Pseudo-second-order kinetic equation describes the dynamic adsorption process of methanol most suitably, which illustrates that methanol adsorption is a physical and chemical composite adsorption process, and adsorption is affected by the surface functional groups of the activated carbons. The fitting result of intra-particle diffusion model is divided into three linear stages: surface adsorption stage, asymptotic adsorption stage and adsorption equilibrium stage. After microwave modification, the adsorption energy of activated carbons for methanol increases, and the adsorption energy is proportional to the contents of surface nitrogen groups of the activated carbon.
引用
收藏
页码:78 / 83
相关论文
共 50 条
  • [21] Modification of an activated carbon pore surface by nanocarbon and study of its adsorption characteristics
    Burakov, A. E.
    Romantsova, I. V.
    Kucherova, A. E.
    Tkachev, A. G.
    PROTECTION OF METALS AND PHYSICAL CHEMISTRY OF SURFACES, 2015, 51 (04) : 505 - 509
  • [22] Modification of an activated carbon pore surface by nanocarbon and study of its adsorption characteristics
    A. E. Burakov
    I. V. Romantsova
    A. E. Kucherova
    A. G. Tkachev
    Protection of Metals and Physical Chemistry of Surfaces, 2015, 51 : 505 - 509
  • [23] Chemical modification of activated carbons and its effect on the adsorption of phenolic compounds
    Carvajal-Bernal, Ana M.
    Gomez, Fernando
    Giraldo, Liliana
    Moreno-Pirajan, Juan C.
    INGENIERIA Y COMPETITIVIDAD, 2015, 17 (01): : 109 - 119
  • [24] Adsorption of toluene and methanol onto activated carbons with acid modification
    Li, L. (liqingli@hotmail.com), 1600, Materials China (64):
  • [26] Surface modification of activated carbon for siloxane adsorption
    Gong, Huijuan
    Chen, Zezhi
    Fan, Yangmei
    Zhang, Mengqun
    Wu, Weili
    Wang, Weibing
    RENEWABLE ENERGY, 2015, 83 : 144 - 150
  • [27] Modification of Activated Carbon for the Adsorption of Humic Acid
    Eustaquio, H. M. B.
    Lopes, Christian W.
    da Rocha, Rafael S.
    Cardoso, Brena D.
    Pergher, Sibele B. C.
    ADSORPTION SCIENCE & TECHNOLOGY, 2015, 33 (02) : 117 - 126
  • [28] Mixture adsorption equilibria of acetone and methanol on activated carbon
    Ambrozek, B
    INZYNIERIA CHEMICZNA I PROCESOWA, 2001, 22 (03): : 563 - 577
  • [29] Effect of microwave and alkaline solution modification activated carbons on adsorption properties of actone acetone
    School of Energy Science and Engineering, Central South University, Changsha
    410083, China
    Zhongnan Daxue Xuebao (Ziran Kexue Ban), 2 (742-750):
  • [30] EFFECT OF POTASSIUM-PERMANGANATE MODIFICATION ON THE MICROSTRUCTURE AND ADSORPTION PROPERTY OF ACTIVATED CARBON
    Wu, Zhifu
    Qing, Peilin
    Guo, Guiquan
    Shi, Bingfang
    Hu, Qiaohong
    MATERIALI IN TEHNOLOGIJE, 2019, 53 (06): : 853 - 858