TY - JOUR
T1 - Anionic and cationic dyes adsorption on porous poly-melamine-formaldehyde polymer
AU - Wang, Yabo
AU - Xie, Yi
AU - Zhang, Yongkui
AU - Tang, Siyang
AU - Guo, Chencen
AU - Wu, Jiansheng
AU - Lau, Raymond
N1 - Publisher Copyright:
© 2016 Institution of Chemical Engineers
PY - 2016/10/1
Y1 - 2016/10/1
N2 - Liquid phase adsorption is one of the most effective approaches for dye removal from colorant effulent. In this study, we investigated the adsorption behaviors of cationc and anionic dyes on a highly porous adsorbent of poly-melamine-formaldehyde (PMF). Both micropores and mesopores were found in PMF, which supported high specific surface area and pore volume. The maxmium adsorption capaities for methylene blue (MB), methyl violet 2B (MV), methyl orange (MO), orange II sodium salt (OS) and congo red (CR) were 80.8, 113.9, 81.2, 89.3 and 87.5 mg g−1, respectively. Isotherm study showed that the experimental data can be well fitted by Langmuir adsorption model. Kinetic study indicated that the adsorption process followed pseudo-second order kinetic model and both external and intra-particle diffusion were rate-determining steps. Furthermore, dye-exhausted PMF can be regenerated by sulfate radical based advanced oxidation process. After 6 runs, the dye removal percentages for MV and OS were 87.6% and 99.4%, respectively, indicating good stability and reusability of PMF. The main factor contributed to the high adsorption capacity of PMF should be ascribed to its high specific surface area and large pore volume. The advantages of high adsorption capacity and stability made PMF a promising adsorbent for colorant effluent treatment.
AB - Liquid phase adsorption is one of the most effective approaches for dye removal from colorant effulent. In this study, we investigated the adsorption behaviors of cationc and anionic dyes on a highly porous adsorbent of poly-melamine-formaldehyde (PMF). Both micropores and mesopores were found in PMF, which supported high specific surface area and pore volume. The maxmium adsorption capaities for methylene blue (MB), methyl violet 2B (MV), methyl orange (MO), orange II sodium salt (OS) and congo red (CR) were 80.8, 113.9, 81.2, 89.3 and 87.5 mg g−1, respectively. Isotherm study showed that the experimental data can be well fitted by Langmuir adsorption model. Kinetic study indicated that the adsorption process followed pseudo-second order kinetic model and both external and intra-particle diffusion were rate-determining steps. Furthermore, dye-exhausted PMF can be regenerated by sulfate radical based advanced oxidation process. After 6 runs, the dye removal percentages for MV and OS were 87.6% and 99.4%, respectively, indicating good stability and reusability of PMF. The main factor contributed to the high adsorption capacity of PMF should be ascribed to its high specific surface area and large pore volume. The advantages of high adsorption capacity and stability made PMF a promising adsorbent for colorant effluent treatment.
KW - Adsorbent
KW - Dye removal
KW - Isotherm
KW - Kinetic study
KW - Polymer
UR - http://www.scopus.com/inward/record.url?scp=84987956497&partnerID=8YFLogxK
U2 - 10.1016/j.cherd.2016.08.027
DO - 10.1016/j.cherd.2016.08.027
M3 - 文章
AN - SCOPUS:84987956497
SN - 0263-8762
VL - 114
SP - 258
EP - 267
JO - Chemical Engineering Research and Design
JF - Chemical Engineering Research and Design
ER -