Polyethylenimine-coated polysulfone/bacterial biomass composite fiber as a biosorbent for the removal of anionic dyes: Optimization of manufacturing conditions using response surface methodology
- Authors
- Park, Ha Neul; Cho, Chul-Woong; Choi, Han Ah; Won, Sung Wook
- Issue Date
- Sep-2017
- Publisher
- KOREAN INSTITUTE CHEMICAL ENGINEERS
- Keywords
- Optimization; Response Surface Methodology; Central Composite Design; Adsorption; Reactive Dyes
- Citation
- KOREAN JOURNAL OF CHEMICAL ENGINEERING, v.34, no.9, pp 2519 - 2526
- Pages
- 8
- Indexed
- SCIE
SCOPUS
KCI
- Journal Title
- KOREAN JOURNAL OF CHEMICAL ENGINEERING
- Volume
- 34
- Number
- 9
- Start Page
- 2519
- End Page
- 2526
- URI
- https://scholarworks.gnu.ac.kr/handle/sw.gnu/13528
- DOI
- 10.1007/s11814-017-0149-3
- ISSN
- 0256-1115
1975-7220
- Abstract
- This study aim was to optimize the manufacturing conditions polyethylenimine-coated polysulfone/bacterial biomass composite fiber (PEI-PSBF) to remove anionic pollutants from aqueous solution. The contents of biomass, PEI, and glutaraldehyde (GA) were selected as independent variables, and the response was defined as Reactive Yellow 2 (RY2) uptake. The manufacturing conditions were optimized by response surface methodology (RSM) with the full factorial central composite design (CCD). The determined coefficient of determination (R-2) value of the reduced quadratic model was 0.9551, and the optimal manufacturing conditions were predicted as 4.145 g of biomass, 1.104 g of PEI and 3.9 mu L of GA, at where the predicted RY2 uptake was 543.78 mg/g. For validating the RSM-predicted results, the RY2 sorption capacity of the optimized PEI-PSBF was evaluated through isotherm experiments. The experimentally confirmed maximal uptake was comparable to predicted one. From these studies, the manufacturing conditions for PEI-PSBF were well optimized and its sorption capacity was 3.83 times higher than that of the PSBF.
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