Functionalized bentonite for removal of Pb(II) and As(V) from surface water: Predicting capability and mechanism using artificial neural network. (February 2023)
- Record Type:
- Journal Article
- Title:
- Functionalized bentonite for removal of Pb(II) and As(V) from surface water: Predicting capability and mechanism using artificial neural network. (February 2023)
- Main Title:
- Functionalized bentonite for removal of Pb(II) and As(V) from surface water: Predicting capability and mechanism using artificial neural network
- Authors:
- Lingamdinne, Lakshmi Prasanna
Amelirad, Omid
Koduru, Janardhan Reddy
Karri, Rama Rao
Chang, Yoon-Young
Dehghani, Mohammad Hadi
Mubarak, Nabisab Mujawar - Abstract:
- Abstract: An efficient material is required to develop effective removal systems with high flexibility and low cost for capturing toxic ions. In this study, a synthesized lanthanum oxide-modified bentonite (B-La) adsorbent was used for the adsorption of As(V) and Pb(II). The prepared material, B-La, shows a feather shape surface with a 25 nm average particle size and was also confirmed by SEM and TEM. Texture and chemical composition confirmed by XRD and FTIR. From the XPS investigation, the underlying mechanism for Pb(II) and As(V) removal was investigated, and the production of B-La-As(V) and B-La-Pb(II) inner-sphere complexation was shown to be the dominating pathway. As per the pH effect studies, it was observed that B-La efficiently adsorbed Pb(II) and As(V) over a pH range of 6.0. Pb(II) adsorption was not substantially impacted by ionic strength or coexisting ions; however, As(V) adsorption was influenced by phosphate and fluoride, showing that B-La has a strong affinity towards Pb(II) and As(V). A pseudo-second-order model could well fit Pb(II) and As(V) adsorption, and Langmuir equilibrium adsorption describes Pb(II) and As(V) adsorption. The adsorption capacity was 147.05 mg of Pb(II)/g and 156.26 mg of As(V)/g, reflected at the dosage of 0.2 g/L at 25 °C, pH 6.0. Using the response surface methodology, the optimum values for process parameters, such as initial concentration, temperature, pH, and time, for both Pb(II) and As(V) removal are identified. DesorptionAbstract: An efficient material is required to develop effective removal systems with high flexibility and low cost for capturing toxic ions. In this study, a synthesized lanthanum oxide-modified bentonite (B-La) adsorbent was used for the adsorption of As(V) and Pb(II). The prepared material, B-La, shows a feather shape surface with a 25 nm average particle size and was also confirmed by SEM and TEM. Texture and chemical composition confirmed by XRD and FTIR. From the XPS investigation, the underlying mechanism for Pb(II) and As(V) removal was investigated, and the production of B-La-As(V) and B-La-Pb(II) inner-sphere complexation was shown to be the dominating pathway. As per the pH effect studies, it was observed that B-La efficiently adsorbed Pb(II) and As(V) over a pH range of 6.0. Pb(II) adsorption was not substantially impacted by ionic strength or coexisting ions; however, As(V) adsorption was influenced by phosphate and fluoride, showing that B-La has a strong affinity towards Pb(II) and As(V). A pseudo-second-order model could well fit Pb(II) and As(V) adsorption, and Langmuir equilibrium adsorption describes Pb(II) and As(V) adsorption. The adsorption capacity was 147.05 mg of Pb(II)/g and 156.26 mg of As(V)/g, reflected at the dosage of 0.2 g/L at 25 °C, pH 6.0. Using the response surface methodology, the optimum values for process parameters, such as initial concentration, temperature, pH, and time, for both Pb(II) and As(V) removal are identified. Desorption studies were also performed to confirm the presented B-La adsorbents' environmental suitability. The Pb(II) and As(V) were completely desorbed with 0.2 M HNO3 and 0.2 M NaOH; after washing with water, it is ready to reuse in the next cycle and can be reused in several cycles of Pb(II) and As(V) adsorption operations. The identified data-driven quadratic model strongly correlated with the experimental values. Machine-learning techniques like artificial neural networks (ANN) and adaptive neuro-fuzzy inference systems (ANFIS), based on results ANN predicted model shows high correlation R 2 value for both metal ions. All the findings indicated that porous B-La was a promising material for Pb(II) and As(V) removal. Graphical abstract: Unlabelled Image Highlights: Developed low-cost novel La-doped bentonite (B-La) composite for As(V) and Pb(II) remediation. BaLa has 99 % removal with an adsorption capacity of 147.05 mg Pb(II)/g and 156.26 mg As(V)/g. The results suggest inner-sphere complexation was dominating pathway for metal removal. Identified the optimum conditions using data-driven quadratic models ANN and ANFIS. Application of BaLa well evaluated by treating contaminated surface water. … (more)
- Is Part Of:
- Journal of water process engineering. Volume 51(2023)
- Journal:
- Journal of water process engineering
- Issue:
- Volume 51(2023)
- Issue Display:
- Volume 51, Issue 2023 (2023)
- Year:
- 2023
- Volume:
- 51
- Issue:
- 2023
- Issue Sort Value:
- 2023-0051-2023-0000
- Page Start:
- Page End:
- Publication Date:
- 2023-02
- Subjects:
- Heavy metals -- Machine learning techniques -- Mathematical evaluations -- Artificial neural networks -- Water remediation -- XPS analysis
Water-supply engineering -- Periodicals
Saline water conversion -- Periodicals
Seawater -- Distillation -- Periodicals
Sanitary engineering -- Periodicals
Sewage -- Purification -- Periodicals
627 - Journal URLs:
- http://www.sciencedirect.com/ ↗
- DOI:
- 10.1016/j.jwpe.2022.103386 ↗
- Languages:
- English
- ISSNs:
- 2214-7144
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 26046.xml