Integration of sub-stoichiometric titanium oxide reactive electrochemical membrane as anode in the electro-Fenton process

被引:40
|
作者
Trellu, Clement [1 ,2 ]
Rivallin, Matthieu [1 ]
Cerneaux, Sophie [1 ]
Coetsier, Clemence [3 ]
Causserand, Christel [3 ]
Oturan, Mehmet A. [2 ]
Cretin, Marc [1 ]
机构
[1] Univ Montpellier, Inst Europeen Membranes, IEM, UMR 5635,ENSCM,CNRS, Montpellier, France
[2] Univ Paris Est, Lab Geomat & Environm, UPEM, EA 4508, F-77454 Marne La Vallee, France
[3] Univ Toulouse, Lab Genie Chim, CNRS, INPT,UPS, Toulouse, France
关键词
Electro-Fenton; Anodic oxidation; Integrated process; Reactive electrochemical membrane; Sub-stoichiometric titanium oxide; Water treatment; ADVANCED OXIDATION PROCESSES; WASTE-WATER TREATMENT; ORGANIC POLLUTANTS; AQUEOUS-MEDIUM; BY-PRODUCTS; MINERALIZATION; DEGRADATION; EFFICIENCY; REMOVAL; DESTRUCTION;
D O I
10.1016/j.cej.2020.125936
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Sub-stoichiometric titanium oxide (TiOx) reactive electrochemical membrane (REM) were integrated for the first time as anode in the electro-Fenton (EF) process. Hydroxyl radicals (center dot OH) were produced both in the retentate from Fenton's reaction and at the REM from anodic oxidation (AO). Optimal mass transport conditions were implemented because of convection-enhanced mass transport of (i) organic pollutants towards the REM surface during filtration and (ii) dissolved O-2 towards cathode active sites owing to the use of a 3D carbon felt cathode in flow-through configuration for H2O2 generation. The efficiency of the REM/EF process was much higher than EF or REM used as standalone processes. For instance, taking paracetamol as target pollutant, (67 +/- 2)% removal of 55 mg L-1 of initial TOC was achieved with a high mineralization current efficiency (MCE) of (43 +/- 1)%. By comparison, standalone REM and EF processes achieved only 47% (MCE = 30%) and 31% (MCE = 20%) of TOC removal, respectively. By monitoring TOC removal both in retentate and permeate, the effect of homogeneous oxidation in the bulk retentate and heterogeneous oxidation at the REM could be observed separately. It was thus highlighted that the efficiency of AO might be affected by the presence of center dot OH and Fe2+ in the bulk. It was also emphasized a synergistic effect related to the formation of carboxylic acids in the bulk retentate that are more easily mineralized at the REM where both center dot OH-mediated oxidation and direct electron transfer occur.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] Efficient rhodamine B degradation using electro-fenton process with PbO2-coated titanium as the anode
    Tian, Jiangnan
    Yang, Maohua
    Mu, Tingzhen
    Sharshar, Moustafa Mohamed
    Ayobami, Matthew Olajuyin
    Xing, Jianmin
    ENVIRONMENTAL PROGRESS & SUSTAINABLE ENERGY, 2019, 38 (01) : 189 - 197
  • [22] Efficiently degradation of perfluorooctanoic acid in synergic electrochemical process combining cathodic electro-Fenton and anodic oxidation
    Wang, Qingning
    Liu, Mingyue
    Zhao, Hongying
    Chen, Ying
    Xiao, Fan
    Chu, Wenhai
    Zhao, Guohua
    CHEMICAL ENGINEERING JOURNAL, 2019, 378
  • [23] Electro-Fenton Process and Related Electrochemical Technologies Based on Fenton's Reaction Chemistry
    Brillas, Enric
    Sires, Ignasi
    Oturan, Mehmet A.
    CHEMICAL REVIEWS, 2009, 109 (12) : 6570 - 6631
  • [24] A microbubble-assisted rotary tubular titanium cathode for boosting Fenton's reagents in the electro-Fenton process
    Qiu, Shan
    Tang, Wangwang
    Yang, Shilin
    Xie, Jinyu
    Yu, Difei
    Garcia-Rodriguez, Orlando
    Qu, Jianhua
    Bai, Shunwen
    Deng, Fengxia
    Radjenovic, Jelena
    JOURNAL OF HAZARDOUS MATERIALS, 2022, 424
  • [25] Hydroxyl radical generation in electro-Fenton process with in situ electro-chemical production of Fenton reagents by gas-diffusion-electrode cathode and sacrificial iron anode
    Kubo, Daichi
    Kawase, Yoshinori
    JOURNAL OF CLEANER PRODUCTION, 2018, 203 : 685 - 695
  • [26] Impact of different anode materials on electro-Fenton process and tannery wastewater treatment using sequential electro-Fenton and electrocoagulation
    Rai D.
    Sinha S.
    Chemosphere, 2023, 336
  • [27] Scaled-up electrochemical reactor with a fixed bed three-dimensional cathode for electro-Fenton process: Application to the treatment of bisphenol A
    Chmayssem, Ayman
    Taha, Samir
    Hauchard, Didier
    ELECTROCHIMICA ACTA, 2017, 225 : 435 - 442
  • [28] High-Rate Anaerobic Digestion of Waste Activated Sludge by Integration of Electro-Fenton Process
    Feki, Emna
    Battimelli, Audrey
    Sayadi, Sami
    Dhouib, Abdelhafidh
    Khoufi, Sonia
    MOLECULES, 2020, 25 (03):
  • [29] Electro-Fenton process for the removal of Direct Red 23 using BDD anode in chloride and sulfate media
    Titchou, Fatima Ezzahra
    Zazou, Hicham
    Afanga, Hanane
    El Gaayda, Jamila
    Akbour, Rachid Ait
    Hamdani, Mohamed
    Oturan, Mehmet A.
    JOURNAL OF ELECTROANALYTICAL CHEMISTRY, 2021, 897
  • [30] Degradation of bisphenol A via the electro-Fenton process using nanostructured carbon-metal oxide anodes: Intermediates and reaction mechanisms study
    Simic, Marija D.
    Brdaric, Tanja P.
    Rosic, Branislava G. Savic
    Svorc, L'ubomir
    Relic, Dubravka J.
    Acimovic, Danka D.
    JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2024, 12 (05):