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Removal of lead by solar-photovoltaic electrocoagulation using novel perforated zinc electrode

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Removal of lead by solar-photovoltaic electrocoagulation using novel perforated zinc electrode. / Hussin, Farihahusnah; Abnisa, Faisal; Issabayeva, Gulnaziya et al.
In: Journal of Cleaner Production, Vol. 147, 20.03.2017, p. 206-216.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

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Hussin F, Abnisa F, Issabayeva G, Aroua MK. Removal of lead by solar-photovoltaic electrocoagulation using novel perforated zinc electrode. Journal of Cleaner Production. 2017 Mar 20;147:206-216. Epub 2017 Jan 20. doi: 10.1016/j.jclepro.2017.01.096

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Hussin, Farihahusnah ; Abnisa, Faisal ; Issabayeva, Gulnaziya et al. / Removal of lead by solar-photovoltaic electrocoagulation using novel perforated zinc electrode. In: Journal of Cleaner Production. 2017 ; Vol. 147. pp. 206-216.

Bibtex

@article{495f73770fb641e1bb6231c6b584ba6b,
title = "Removal of lead by solar-photovoltaic electrocoagulation using novel perforated zinc electrode",
abstract = "Electrocoagulation can successfully remove metals from diluted wastewater streams with conventional anode materials, such as aluminium, iron and copper. The disadvantages of conventional electrocoagulation systems (i) are expensive because they require substantial electric energy input, and (ii) electrode materials directly influence electrocoagulation efficiency. Developing an electrocoagulation system with a solar photovoltaic energy source is possible. Using this energy source significantly reduces process costs and exhibit high treatment efficiency when combined with a suitable electrode material. In this study, perforated zinc was tested as a novel anode to remove lead ions from aqueous solutions through electrocoagulation treatment powered by solar photovoltaic. The effects of electrode materials, electrode geometry, energy consumption and sludge production on Pb(II) removal were also investigated. Results demonstrated the superior performance of the perforated zinc electrode with a lead ions removal efficiency of 99.9% achieved within 10 min of treatment at 1.13 mA/cm2 current density. Morphological, elemental analysis of the electrode surface and formed sludge confirmed that less sludge was generated during Pb(II) removal from simulated wastewater by the proposed electrocoagulation system under the optimal conditions.",
keywords = "Electrocoagulation, Lead, Perforated zinc, Solar photovoltaic, Wastewater",
author = "Farihahusnah Hussin and Faisal Abnisa and Gulnaziya Issabayeva and Aroua, {Mohamed Kheireddine}",
year = "2017",
month = mar,
day = "20",
doi = "10.1016/j.jclepro.2017.01.096",
language = "English",
volume = "147",
pages = "206--216",
journal = "Journal of Cleaner Production",
issn = "0959-6526",
publisher = "Elsevier Ltd",

}

RIS

TY - JOUR

T1 - Removal of lead by solar-photovoltaic electrocoagulation using novel perforated zinc electrode

AU - Hussin, Farihahusnah

AU - Abnisa, Faisal

AU - Issabayeva, Gulnaziya

AU - Aroua, Mohamed Kheireddine

PY - 2017/3/20

Y1 - 2017/3/20

N2 - Electrocoagulation can successfully remove metals from diluted wastewater streams with conventional anode materials, such as aluminium, iron and copper. The disadvantages of conventional electrocoagulation systems (i) are expensive because they require substantial electric energy input, and (ii) electrode materials directly influence electrocoagulation efficiency. Developing an electrocoagulation system with a solar photovoltaic energy source is possible. Using this energy source significantly reduces process costs and exhibit high treatment efficiency when combined with a suitable electrode material. In this study, perforated zinc was tested as a novel anode to remove lead ions from aqueous solutions through electrocoagulation treatment powered by solar photovoltaic. The effects of electrode materials, electrode geometry, energy consumption and sludge production on Pb(II) removal were also investigated. Results demonstrated the superior performance of the perforated zinc electrode with a lead ions removal efficiency of 99.9% achieved within 10 min of treatment at 1.13 mA/cm2 current density. Morphological, elemental analysis of the electrode surface and formed sludge confirmed that less sludge was generated during Pb(II) removal from simulated wastewater by the proposed electrocoagulation system under the optimal conditions.

AB - Electrocoagulation can successfully remove metals from diluted wastewater streams with conventional anode materials, such as aluminium, iron and copper. The disadvantages of conventional electrocoagulation systems (i) are expensive because they require substantial electric energy input, and (ii) electrode materials directly influence electrocoagulation efficiency. Developing an electrocoagulation system with a solar photovoltaic energy source is possible. Using this energy source significantly reduces process costs and exhibit high treatment efficiency when combined with a suitable electrode material. In this study, perforated zinc was tested as a novel anode to remove lead ions from aqueous solutions through electrocoagulation treatment powered by solar photovoltaic. The effects of electrode materials, electrode geometry, energy consumption and sludge production on Pb(II) removal were also investigated. Results demonstrated the superior performance of the perforated zinc electrode with a lead ions removal efficiency of 99.9% achieved within 10 min of treatment at 1.13 mA/cm2 current density. Morphological, elemental analysis of the electrode surface and formed sludge confirmed that less sludge was generated during Pb(II) removal from simulated wastewater by the proposed electrocoagulation system under the optimal conditions.

KW - Electrocoagulation

KW - Lead

KW - Perforated zinc

KW - Solar photovoltaic

KW - Wastewater

U2 - 10.1016/j.jclepro.2017.01.096

DO - 10.1016/j.jclepro.2017.01.096

M3 - Journal article

AN - SCOPUS:85013407971

VL - 147

SP - 206

EP - 216

JO - Journal of Cleaner Production

JF - Journal of Cleaner Production

SN - 0959-6526

ER -