AI Article Synopsis

  • The study focused on the adsorption capabilities of SO2 using KOH-impregnated granular activated carbon (K-IAC), demonstrating it can capture 13.2 times more SO2 than regular activated carbon.
  • Experiments showed that higher concentrations and faster flow rates increased SO2 adsorption, while lower temperatures favored the formation of chemicals like K2-SO3 and K2SO4 during the reaction with KOH.
  • Surface analysis techniques confirmed that the enhanced SO2 capture was due to a chemical reaction involving KOH, resulting in stable compounds on the activated carbon's surface.

Article Abstract

The adsorption characteristics of SO2 were studied with KOH-impregnated granular activated carbon (K-IAC). To confirm selective SO2 adsorptivity of K-IAC using a fixed bed adsorption column, experiments were conducted on the effects of KOH and of linear velocity, temperature, and concentration. In addition, changes in features before and after adsorption were observed by utilizing FTIR, XRD, ToF-SIMS, and AES/SAM, examining the surface chemistry. K-IAC adsorbed 13.2 times more SO2 than did general activated carbon (GAC). The amount of SO2 adsorbed increased as linear velocity and concentration increased and as temperature decreased. At lower temperature, the dominant reaction between KOH and SO2 produces K2-SO3 and H2O. Any H2O remaining on the surface is converted into H2SO4 as SO2 and O2 are introduced. Then, the KOH and SO2 reaction produces K2SO4 and H2O. The surface characterization results proved that adsorption occurred through chemical reaction between KOH and SO2. The SO2 adsorbed K-IAC exists in the form of stable oxide crystal, K2SO3 and K2SO4, due to potassium. The basic feature given to the surface of activated carbon by KOH impregnation was confirmed to be acting as the main factor in enhancing SO2 adsorptivity.

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Source
http://dx.doi.org/10.1021/es010916lDOI Listing

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