Volume 44 Issue 1
Jan.  2016
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YANG Gang-sheng, ZENG Gan-ning, ZHAO Qiang, CHEN Xu, CHEN Sheng-ji, AI Ning. Preparation of silica gel supported amino acid ionic liquids and their performance capacity towards carbon dioxide[J]. Journal of Fuel Chemistry and Technology, 2016, 44(1): 106-112.
Citation: YANG Gang-sheng, ZENG Gan-ning, ZHAO Qiang, CHEN Xu, CHEN Sheng-ji, AI Ning. Preparation of silica gel supported amino acid ionic liquids and their performance capacity towards carbon dioxide[J]. Journal of Fuel Chemistry and Technology, 2016, 44(1): 106-112.

Preparation of silica gel supported amino acid ionic liquids and their performance capacity towards carbon dioxide

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The project was supported by the Public Welfare Project of Science and Technology Department of Zhejiang Province 2013C33005

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  • Corresponding author: AI Ning, Tel:0571-88320870, E-mail:aining@zjut.edu.cn
  • Received Date: 2015-07-24
  • Rev Recd Date: 2015-09-29
  • Available Online: 2022-03-23
  • Publish Date: 2016-01-01
  • Two amino acid ionic liquids (AAILs), viz., tetramethyl ammonium glycinate ([N1111][Gly]) and tetramethyl ammonium lysine ([N1111][Lys]) were supported on porous silica gel through impregnation evaporation method and used as the adsorbents for carbon dioxide. They were characterized by elemental analysis (EA), thermogravimetric analysis (TGA), nitrogen physisorption and Fourier transform infrared (FT-IR) spectroscopy; the effects of AAIL type, loading and temperature on their adsorption capacity towards carbon dioxide were investigated. The results illustrate that AAILs are successfully immobilized into the porous silica gel and the supported sorbents exhibit excellent performance towards carbon dioxide, i.e. fast adsorption rate and high capacity. At 303.15-323.15 K, the adsorption capacity reduces with the increase of temperature, whereas there is a optimal loading of ionic liquids to get highest adsorption capacity towards carbon dioxide. Under 30 ℃ and 0.1 MPa, the [N1111][Gly]/SG adsorbent with a [N1111][Gly] loading of 22.4% exhibits the highest CO2 capture capacity, i.e. 41 mg/g, equivalent to 0.62 mol CO2 per mol AAILs; moreover, 90% of the equilibrium adsorption amount can be achieved in 20 min. Furthermore, no obvious decrease in the adsorption capacity is observed after recycling for six times.
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