Construction of the multi-layer TiO2-NTs/Sb-SnO2/PbO2 electrode for the highly efficient and selective oxidation of ammonia in aqueous solution: Characterization, performance and mechanism

被引:17
|
作者
Zhang, Zhiyong [1 ,2 ]
Liu, Jianqiao [2 ]
Ai, Huiying [1 ,2 ]
Chen, Aixing [2 ]
Xu, Lei [2 ]
Labiadh, Lazhar [2 ]
Fu, Ming-Lai [2 ]
Yuan, Baoling [1 ]
机构
[1] Jilin Jianzhu Univ, Key Lab Songliao Aquat Environm, Minist Educ, Changchun 130118, Peoples R China
[2] Huaqiao Univ, Coll Civil Engn, Xiamen Key Lab Municipal & Ind Solid Waste Utiliza, Xiamen 361021, Fujian, Peoples R China
来源
基金
国家自然科学基金重大项目;
关键词
Wastewater treatment; Electrochemical oxidation; Ammonia nitrogen; Multi-layer stable anode; Gaseous nitrogen; ELECTROCHEMICAL OXIDATION; CHLORINE; NITROGEN; REMOVAL; N-2; TRANSFORMATION; DEGRADATION; ANODE;
D O I
10.1016/j.jece.2023.109834
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Electrochemical oxidation is a promising technology to convert ammonia nitrogen to environmental-friendly gaseous nitrogen, but the high cost of the precious metal as an electrode limits its application. Herein, the multi-layer TiO2-NTs/Sb-SnO2/PbO2 electrode, a cheap and efficient dimensionally stable anode (DSA), was constructed for selective electrocatalytic oxidation of ammonia. The surface morphology, crystalline structure, and composition of the TiO2-NTs/Sb-SnO2/PbO2 electrode were investigated by the field emission scanning electron microscope (SEM), X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS). The synergistic effect of the multi-layer structures of the electrode contributed to a stable structure and efficient electrocatalytic activity. Accelerated lifetime measurements and electrode recycling tests proved that the electrode possessed outstanding stability and long life with continuously used for 935 h. Compared with the commercial Ti/RuO2- IrO2, the TiO2-NTs/Sb-SnO2/PbO2 electrode displayed a more excellent performance of chlorine evolution and higher removal efficiency of ammonia. Under the optimal conditions, 30 mg/L of ammonia nitrogen could be completely removed with 92.3% selective conversion to gaseous nitrogen after 60 min. Moreover, the difference between oxygen evolution potential and chlorine evolution potential exceeded 0.45 V on the TiO2-NTs/Sb-SnO2/ PbO2 electrode, which enhanced the anodic chlorine evolution reaction. Hypochlorite radical (ClO & BULL;) was sup-posed as the dominant oxidant to transform ammonia in water, which could promote ammonia removal and the selectivity of gaseous nitrogen with minimizing by-products formation such as nitrite and nitrate, etc. Therefore, this study suggests that the constructed multi-layer TiO2-NTs/Sb-SnO2/PbO2 electrode might be a promising anode for the electrochemical oxidation of ammonia nitrogen to N2 in an aqueous solution.
引用
收藏
页数:10
相关论文
共 30 条
  • [21] Electrochemical oxidation of pyrrole, pyrazole and tetrazole using a TiO2 nanotubes based SnO2-Sb/3D highly ordered macro-porous PbO2 electrode
    Zhou, Xiezhen
    Liu, Siqi
    Yu, Hongxia
    Xu, Anlin
    Li, Jiansheng
    Sun, Xiuyun
    Shen, Jinyou
    Han, Weqing
    Wang, Lianjun
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2018, 826 : 181 - 190
  • [22] Constructing Stake Structured TiO2-NTs/Sb-Doped SnO2 Electrode Simultaneously with High Electrocatalytic and Photocatalytic Performance for Complete Mineralization of Refractory Aromatic Acid
    Li, Peiqiang
    Zhao, Guohua
    Cui, Xiao
    Zhang, Yonggang
    Tang, Yiting
    JOURNAL OF PHYSICAL CHEMISTRY C, 2009, 113 (06): : 2375 - 2383
  • [23] Electrochemical degradation of methylisothiazolinone by using Ti/SnO2-Sb2O3/α, β-PbO2 electrode: Kinetics, energy efficiency, oxidation mechanism and degradation pathway
    Wang, Yingcai
    Chen, Min
    Wang, Can
    Meng, Xiaoyang
    Zhang, Weiqiu
    Chen, Zefang
    Crittenden, John
    CHEMICAL ENGINEERING JOURNAL, 2019, 374 (626-636) : 626 - 636
  • [24] Efficient electrochemical degradation of ceftazidime by Ti3+ self-doping TiO2 nanotube-based Sb–SnO2 nanoflowers as an intermediate layer on a modified PbO2 electrode
    Wang J.
    Duan X.
    Ren Y.
    Chemosphere, 2024, 356
  • [25] Using of Ti/Co3O4/PbO2/(SnO2 + Sb2O3) modified electrode as indicator electrode in potentiometric and conductometric titration in aqueous solution
    Abu Ghalwa, Nasser
    Hamada, Mazen
    Abu-shawish, Hazem M.
    Abu Swareh, Ashraf
    Al Askalany, Mohammed
    Siam, Tagreed
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2012, 664 : 7 - 13
  • [26] Fabrication of a SnO2-Sb electrode with TiO2 nanotube array as the middle layer for efficient electrochemical oxidation of amaranth dye
    Chen, Daying
    Zhao, Lin
    Chen, Danning
    Hou, Pengfei
    Liu, Jiashu
    Wang, Chuanbin
    Aborisade, Moses Akintayo
    Yin, Meilin
    Yang, Yongkui
    CHEMOSPHERE, 2023, 325
  • [27] Simultaneous electrochemical degradation of pesticides from the aqueous environment using Ti/SnO2-Sb2O3/PbO2/Bi electrode; process modeling and mechanism insight
    Dolatabadi, Maryam
    Ehrampoush, Mohammad Hassan
    Pournamdari, Mostafa
    Ebrahimi, Ali Asghar
    Fallahzadeh, Hossein
    Ahmadzadeh, Saeid
    CHEMOSPHERE, 2023, 311
  • [28] Highly Efficient Electrochemical Oxidation of Carbamazepine Using a Novel Graphene Nanoplatelet-doped PbO2 Electrode: Characteristics, Efficiency, and Mechanism
    Wu, Duoer
    He, Cong
    Feng, Yang
    Ding, Yangcheng
    Yan, Yan
    Ma, Xiangjuan
    Feng, Huajun
    Xia, Yijing
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2023, 170 (07)
  • [29] Preparation of Ti/SnO2-Sb2O4-La Electrode with TiO2 Nanotubes Intermediate Layer and the Electrochemical Oxidation Performance of Rhodamine B
    He, Yuanzhen
    Zhong, Dengjie
    Xu, Yunlan
    Jiang, Ran
    Zhang, Jiayou
    Liao, Pengfei
    LANGMUIR, 2024, 40 (14) : 7569 - 7580
  • [30] Energy-efficient pulse electrochemical oxidation of Acid Blue 9 using a Ti/SnO2-Sb/α,β-Polytetrafluoroethylene-Fe-PbO2 electrode: Kinetics, mass transfer and mechanism
    Ma, Xiangjuan
    Yan, Yan
    Dai, Qizhou
    Gao, Jianxian
    Liu, Shengjue
    Xia, Yijing
    SEPARATION AND PURIFICATION TECHNOLOGY, 2021, 279