Development of nitric acid-modified activated carbon electrode for removal of Co2+/Mn2+/Ni2+ by electrosorption

被引:0
作者
Yun Xue
Wanting Cheng
Meng Cao
Jianzhang Gao
Jiaqi Chen
Yunyang Gui
Wenmin Zhu
Fuqiu Ma
机构
[1] Harbin Engineering University,Yantai Research Institute
[2] Harbin Engineering University,College of Nuclear Science and Technology
来源
Environmental Science and Pollution Research | 2022年 / 29卷
关键词
Electrosorption; Cobalt; Manganese; Nickel; Activated carbon; Nitric acid modification;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, nitric acid-modified activated carbon was used as an electrode in the electrosorption process for the removal of Co2+, Mn2+, and Ni2+ from wastewater. The effects of applied voltage, initial pH, and coexisting ions on removal efficiency were investigated. The adsorption process was evaluated by adsorption isotherm models. The results indicated that the electrosorption process was consistent with the Langmuir model, proving that the electrosorption process was a monolayer adsorption process. The maximum adsorption capacities of Co2+, Mn2+, and Ni2+ were 131.58 mg/g, 102.04 mg/g, and 103.09 mg/g. Electrochemical tests revealed that the specific capacitance of AC-HNO3 was 54.11 F/g when the scanning rate was 5 mV/s, while the specific capacitance of AC was 36.51 F/g. The Fourier transform infrared spectroscopy (FT-IR) and X-ray photoelectron spectroscopy (XPS) confirmed that the content of oxygen groups on the surface of activated carbon increased after modification, which provided more adsorption sites for electrosorption. When the selected concentration of HCl was used as the eluent, the elution efficiency of Co2+, Mn2+, and Ni2+ could reach 94.23%, 93.65%, and 90.61%. The removal efficiency could reach more than 95% after three cycles. The results of the study can be used as a reference significance for the removal of cobalt, manganese, and nickel ions from heavy metal wastewater by electrosorption.
引用
收藏
页码:77536 / 77552
页数:16
相关论文
共 275 条
[1]  
Abdullah N(2019)Recent trends of heavy metal removal from water/wastewater by membrane technologies J Ind Eng Chem 76 17-38
[2]  
Yusof N(2018)Influence of thermal treatment conditions on capacitive deionization performance and charge efficiency of carbon electrodes Sep Purif Technol 202 67-75
[3]  
Lau WJ(2021)Insight into synergies between Acinetobacter sp. AL-6 and pomelo peel biochar in a hybrid process for highly efficient manganese removal Sci Total Environ 793 148609-466
[4]  
Jaafar J(2019)Comparative study of hydrogen evolution behavior of nickel cobalt and nickel cobalt magnesium alloy film prepared by pulsed electrodeposition Vacuum 160 461-840
[5]  
Ismail AF(2021)Carbon-based capacitive deionization electrodes: development techniques and its influence on electrode properties Chem Rec 21 820-1812
[6]  
Agartan L(2019)Palm kernel shell as an effective adsorbent for the treatment of heavy metal contaminated water Sci Rep 9 18955-15753
[7]  
Akuzum B(2011)Adsorption of lead(II) from aqueous solution by using leaves of date trees as an adsorbent J Chem Eng Data 56 1804-352
[8]  
Mathis T(2019)Technologies applicable to the removal of heavy metals from landfill leachate Environ Sci Pollut Res 26 15725-52
[9]  
Ergenekon K(2021)A review on conventional and novel materials towards heavy metal adsorption in wastewater treatment application J Clean Prod 296 126589-405
[10]  
Agar E(2018)Highly conductive porous Na-embedded carbon nanowalls for high-performance capacitive deionization J Phys Chem Solids 116 347-609