| Literature DB >> 29276738 |
Eko Prasetyo Kuncoro1, Dwi Ratri Mitha Isnadina1, Handoko Darmokoesoemo2, Oktiani Rahmanita Fauziah1, Heri Septya Kusuma3.
Abstract
The usage of wastes of bagasse would be admirable from environmental and solid waste management point of view. Thus, herein, this data set present a facile method for providing an adsorbent from mixture of bagasse-bentonite. The prepared adsorbent was applied to remove Pb2+ from aqueous solution. It was conducted in laboratory scale using completely randomized design with variations in mixed mass ratio (1:0, 1:1, 1:2, 1:3, 2:1, 3:1), pH (2, 3, 4, 5, 6, 7) and contact time (5, 10, 30, 45, 90, 120, 180 min) and the adsorption technique was batch technique. The mixed adsorbent with 3:1 of mass ratio provided the highest Pb2+ adsorption efficiency of 97.31%. The optimum pH of Pb2+ adsorption was 5 and contact time was efficient at 45 min giving adsorption efficiency of 94.76% and 93.38%. The characterization data of the adsorbent were analyzed using XRF and FTIR methods. The XRF test results showed the changes of elemental content in adsorbent after the adsorption indicated that adsorbent can absorb Pb2+. The FTIR test results showed that adsorbent has a functional group that is useful in adsorption process. Adsorption of Pb2+ by adsorbent from mixture of bagasse-bentonite follows pseudo second order model with correlation coefficient value of 99.99% (R2 = 0.9999) and Freundlich isotherm model with correlation coefficient value of 90.05% (R2 = 0.9005). The acquired data indicated that the adsorption of Pb2+ by the adsorbent prepared from mixture of bagasse-bentonite is a promising technique for treating Pb-bearing wastewaters.Entities:
Keywords: Adsorption; Bagasse; Bentonite; Composite adsorbent; Pb2+
Year: 2017 PMID: 29276738 PMCID: PMC5730380 DOI: 10.1016/j.dib.2017.11.098
Source DB: PubMed Journal: Data Brief ISSN: 2352-3409
Fig. 1The XRF spectrum for the adsorbent from mixture of bagasse-bentonite before adsorption.
Fig. 2The XRF spectrum for the adsorbent from mixture of bagasse-bentonite after adsorption.
Fig. 3The FTIR spectrum for the adsorbent from mixture of bagasse-bentonite before adsorption.
Fig. 4The FTIR spectrum for the adsorbent from mixture of bagasse-bentonite after adsorption.
Fig. 5pHfinal vs. pHinitial for mixture of bagasse-bentonite.
Fig. 6Schematic representation of physical mechanism for adsorption of Pb2+ onto mixture of bagasse-bentonite [2].
Optimum condition for Pb2+ adsorption on mixture of bagasse-bentonite (The concentration of Pb2+ solution is 100 mg/L).
| Parameters | Optimum value | Adsorption efficiency (%) |
|---|---|---|
| Mixture ratio of bagasse and bentonite | 3:1 | 97.31 |
| pH | 5 | 94.76 |
| Time (min) | 45 | 93.38 |
| Average value | 95.15 |
Kinetic and Isotherm model/equations used in this data article [1], [2].
| Model | Functional form | Plotting |
|---|---|---|
| Pseudo first order | ||
| Pseudo second order | ||
| Intra-particle diffusion | ||
| Langmuir | ||
| Freundlich |
Kinetics data for Pb2+ adsorbed onto the adsorbent from mixture of bagasse-bentonite.
| Parameter | Value |
|---|---|
| Presudo first order | |
| | 0.1434 |
| | 0.0149 |
| | 0.9717 |
| Pseudo second order | |
| | 9.4607 |
| | 0.4560 |
| | 0.9999 |
| Intra-particle diffusion | |
| | 9.2955 |
| | 0.0128 |
| | 0.9649 |
Isotherms data for Pb2+ adsorbed onto the adsorbent from mixture of bagasse-bentonite.
| Parameter | Value |
|---|---|
| Langmuir | |
| | −4.2808 |
| | 0.0905 |
| | 0.8874 |
| Freundlich | |
| | 0.5013 |
| | 7.9524 |
| | 0.9005 |
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