TY - JOUR
T1 - Adsorption of Hydrogen Sulfide from Gas Streams Using the Amorphous Composite of α-FeOOH and Activated Carbon Powder
AU - Lee, Seongwoo
AU - Lee, Taejin
AU - Kim, Daekeun
N1 - Publisher Copyright:
© 2017 American Chemical Society.
PY - 2017/3/22
Y1 - 2017/3/22
N2 - The aim of this study was to identify the characteristics of an α-FeOOH based composite for the removal of hydrogen sulfide in room temperature gas streams. α-FeOOH was supported on commercial-activated carbon powder to avoid the agglomeration problem of composite fabrication. α-FeOOH was prepared by using FeCl3 solution (as an Fe precursor) and NH4HCO3 (as a pH control). The formation of α-FeOOH was confirmed by observing α-Fe2O3 under the hydrothermal condition. The results of the experiment indicate that the activated carbon powder functioned effectively as the support material of the composite, providing a large active site on the surface of the composite, preventing the agglomeration of precipitate particles of FeOOH, and then allowing high breakthrough capacity (0.171 g H2S/g composite) compared to that of α-FeOOH alone (0.046 g H2S/g α-FeOOH). The textural analyses showed that the composite of the α-FeOOH and activated carbon powder had a mesoporous structure with a BET surface area of 500 m2/g, while the surface area was 188 m2/g for α-FeOOH alone. This study established that the synthesized material can be used as a heterogeneous adsorbent for the effective removal of hydrogen sulfide from gas streams. (Graph Presented).
AB - The aim of this study was to identify the characteristics of an α-FeOOH based composite for the removal of hydrogen sulfide in room temperature gas streams. α-FeOOH was supported on commercial-activated carbon powder to avoid the agglomeration problem of composite fabrication. α-FeOOH was prepared by using FeCl3 solution (as an Fe precursor) and NH4HCO3 (as a pH control). The formation of α-FeOOH was confirmed by observing α-Fe2O3 under the hydrothermal condition. The results of the experiment indicate that the activated carbon powder functioned effectively as the support material of the composite, providing a large active site on the surface of the composite, preventing the agglomeration of precipitate particles of FeOOH, and then allowing high breakthrough capacity (0.171 g H2S/g composite) compared to that of α-FeOOH alone (0.046 g H2S/g α-FeOOH). The textural analyses showed that the composite of the α-FeOOH and activated carbon powder had a mesoporous structure with a BET surface area of 500 m2/g, while the surface area was 188 m2/g for α-FeOOH alone. This study established that the synthesized material can be used as a heterogeneous adsorbent for the effective removal of hydrogen sulfide from gas streams. (Graph Presented).
UR - http://www.scopus.com/inward/record.url?scp=85018408740&partnerID=8YFLogxK
U2 - 10.1021/acs.iecr.6b04747
DO - 10.1021/acs.iecr.6b04747
M3 - Article
AN - SCOPUS:85018408740
SN - 0888-5885
VL - 56
SP - 3116
EP - 3122
JO - Industrial and Engineering Chemistry Research
JF - Industrial and Engineering Chemistry Research
IS - 11
ER -