Electrode materials used for electrochemical oxidation of organic compounds in wastewater

被引:0
|
作者
Marina Shestakova
Mika Sillanpää
机构
[1] Lappeenranta University of Technology,Laboratory of Green Chemistry, School of Engineering Science
关键词
Electrochemical oxidation; Mixed-metal oxide electrodes; BDD; PbO; Organic pollutants;
D O I
暂无
中图分类号
学科分类号
摘要
Electrochemical oxidation (EO) of organic compounds is an outstanding technology capable of oxidizing organic pollutants to simple inorganic compounds such as H2O and CO2. Moreover, EO can be attributed to an energy-efficient process, since it requires only insignificant amount of energy in the form of an applied current or a potential to activate the electrodes. There is a vast variety of electrodes used in EO processes for organic compounds degradation. They are noble metal electrodes, such as Pt and Au, boron-doped diamond (BDD) electrodes, mixed metal oxide (MMO), graphite and carbon electrode, etc. In this regard, it becomes difficult to focus on existing electrode properties and characteristics and choose an anode material for a particular application. The aim of this study was to review information on existing anodes used in EO processes, their advantages and disadvantages, performance and application area. Thus far, MMO electrodes along with BDD electrodes are leading materials used in the processes of EO of dyes, pesticides, pharmaceuticals, industrial wastewaters, etc. This is due to their excellent catalytic properties and resistance to both corrosion and dissolution. The catalytic activity of MMO electrodes strongly depends not only on their composition but also on fabrication methods. Thus, a correlation was made between the methods of manufacturing, efficiency and cost in the MMO electrodes. Despite the wide variety of anodes, most of them are either relatively expensive to be used for large volumes of wastewater, or they consist of potentially toxic metals. Moreover, none of them are sufficiently efficient and stable. Therefore, cost-effective, efficient and “green” anodic materials are still under development.
引用
收藏
页码:223 / 238
页数:15
相关论文
共 50 条
  • [1] Electrode materials used for electrochemical oxidation of organic compounds in wastewater
    Shestakova, Marina
    Sillanpaa, Mika
    REVIEWS IN ENVIRONMENTAL SCIENCE AND BIO-TECHNOLOGY, 2017, 16 (02) : 223 - 238
  • [2] THE ELECTROCHEMICAL OXIDATION AND REDUCTION OF SOME ORGANIC COMPOUNDS AT THE ROTATING DISC ELECTRODE
    AIKAZYAN, EA
    PLESKOV, YV
    ZHURNAL FIZICHESKOI KHIMII, 1957, 31 (01): : 205 - 213
  • [3] ELECTROCHEMICAL OXIDATION OF ORGANIC COMPOUNDS
    WEINBERG, NL
    WEINBERG, HR
    CHEMICAL REVIEWS, 1968, 68 (04) : 449 - +
  • [4] ELECTROCHEMICAL OXIDATION OF ORGANIC COMPOUNDS
    UTLEY, JHP
    BRITISH CHEMICAL ENGINEERING, 1970, 15 (03): : 383 - &
  • [5] Electrochemical instruments: Electrodes, reactors, membranes - Electrode materials used in organic electrosynthesis
    Savall, A
    ACTUALITE CHIMIQUE, 1998, (10): : 4 - 15
  • [6] Electrochemical Oxidation of Azo Dye Wastewater Using Graphene-Based Electrode Materials
    Li, Jinyan
    Guan, Qingsong
    Hong, Junming
    Chang, Chang-Tang
    JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2019, 19 (11) : 7308 - 7314
  • [7] A Flow Electrochemical Cell with Split Bipolar Electrode for Anodic Oxidation of Organic Compounds
    Sakagami, Hiroki
    Takenaka, Hiroaki
    Iwai, Suguru
    Shida, Naoki
    Villani, Elena
    Gotou, Akihiro
    Isogai, Tomohiro
    Yamauchi, Akiyoshi
    Kishikawa, Yosuke
    Fuchigami, Toshio
    Tomita, Ikuyoshi
    Inagi, Shinsuke
    CHEMELECTROCHEM, 2022, 9 (06)
  • [8] Electrochemical Oxidation of Organic Compounds Using Boron-Doped Diamond Electrode
    Chang, Ming
    Gao, Chengyao
    Jiang, Juyuan
    JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2009, 156 (02) : E50 - E54
  • [9] Oxidation of organic compounds on NiOOH electrode
    B. V. Lyalin
    V. A. Petrosyan
    Russian Journal of Electrochemistry, 2010, 46 : 1199 - 1214
  • [10] Oxidation of organic compounds on NiOOH electrode
    Lyalin, B. V.
    Petrosyan, V. A.
    RUSSIAN JOURNAL OF ELECTROCHEMISTRY, 2010, 46 (11) : 1199 - 1214