Electrochemical removal of imidacloprid on different anodes with in-situ H2O2 generation: Optimizing conditions for rapid degradation and safe byproducts

被引:0
|
作者
Menezes, Thalles Henrique S. [1 ]
Bezerra, Rafaella L. N. [1 ]
de Araujo, Victor Emmanoel S. [1 ]
Gomes, Pricilia S. P. [1 ]
dos Santos, Clecia A. [2 ]
Doria, Aline R. [3 ,4 ]
Eguiluz, Katlin I. B. [3 ,4 ]
Salazar-Banda, Giancarlo R. [3 ,4 ]
Romao, Luciane P. C. [1 ,2 ]
机构
[1] Fed Univ Sergipe UFS, Chem Dept, BR-49100000 Sao Cristovao, SE, Brazil
[2] UNESP, Inst Chem, Natl Inst Alternat Technol Detect Toxicol Evaluat, POB 355, BR-14800900 Araraquara, SP, Brazil
[3] Tiradentes Univ UNIT, Inst Technol & Res, BR-49000000 Aracaju, SE, Brazil
[4] Univ Tiradentes, Postgrad Program Proc Engn PEP, BR-49000000 Aracaju, SE, Brazil
基金
巴西圣保罗研究基金会;
关键词
Advanced electrochemical oxidative processes; Boron-doped diamond; Platinum; Mixed metal oxides; Degradation products; Toxicity; ORGANIC POLLUTANTS; HYDROGEN-PEROXIDE; ELECTRO-FENTON; NEONICOTINOID INSECTICIDES; WATER; OXIDATION; ELECTROGENERATION;
D O I
10.1016/j.cej.2024.157666
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Imidacloprid is a neonicotinoid insecticide with the highest detection frequency in aquatic environments. To address its issue, the degradation of imidacloprid present in a commercial sample was investigated through the efficiencies of BDD, Pt, and MMO-RuO2-TiO2 anodes, using electrochemical oxidation with hydrogen peroxide electrogeneration (EO-H2O2), and employing a gas diffusion electrode (GDE) as the cathode. Among the anodes tested, BDD provided the best results, with complete degradation of imidacloprid after 40 min using pH 7, 67 mA cm-2, and Na2SO4 as the supporting electrolyte, for all the initial imidacloprid concentrations investigated. Additionally, tests were performed using IMD at low concentrations in different matrices. Replacing Na2SO4 with NaCl as the supporting electrolyte resulted in significantly increased degradation using the Pt (51.0-92.0 %) and MMO (49.0-88.0 %) anodes. LC-MS analyses confirmed the complete degradation of imidacloprid, with the data obtained enabling the proposal of the structures of two degradation products. Toxicity analysis using ECOSAR software showed that imidacloprid could cause acute and chronic toxicity for the organisms studied, while degradation product I did not show any toxicity, and degradation product II was classified as harmful to fish. The findings indicated that under optimized conditions, the three anodes have a high potential for use in EO-H2O2 systems for the removal of imidacloprid present in water matrices.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Photocatalytic production of H2O2 and its in-situ environmental applications
    Huang, Song
    Yang, Xingzi
    Zhou, Liang
    Lei, Juying
    Wang, Lingzhi
    Liu, Yongdi
    Zhang, Jinlong
    RESEARCH ON CHEMICAL INTERMEDIATES, 2024, 50 (07) : 2917 - 2969
  • [22] In-situ purification of aligned carbon nanotube arrays by H2O2
    Wang, Y
    Bai, XD
    Liang, J
    NEW CARBON MATERIALS, 2005, 20 (02) : 103 - 107
  • [23] Generation of Pd-O for Promoting Electrochemical H2O2 Production
    Du, Jiawei
    Jiang, Shuaihu
    Zhang, Ruya
    Wang, Pai
    Ma, Chao
    Zhao, Ruijuan
    Cui, Chunhua
    Zhang, Yanning
    Kang, Yijin
    ACS CATALYSIS, 2023, 13 (10): : 6887 - 6892
  • [24] Thermal reduced graphene oxide enhanced in-situ H2O2 generation and electrochemical advanced oxidation performance of air-breathing cathode
    Li, Wen
    Feng, Yujie
    An, Jingkun
    Yunfei, Li
    Zhao, Qian
    Liao, Chengmei
    Wang, Xin
    Liu, Jia
    Li, Nan
    ENVIRONMENTAL RESEARCH, 2022, 204
  • [25] In situ H2O2 generation methods in the context of enzyme biocatalysis
    Wapshott-Stehli, Hannah L.
    Grunden, Amy M.
    ENZYME AND MICROBIAL TECHNOLOGY, 2021, 145
  • [26] The jet aerator as oxygen supplier for the electrochemical generation of H2O2
    Perez, J. F.
    Llanos, J.
    Saez, C.
    Lopez, C.
    Canizares, P.
    Rodrigo, M. A.
    ELECTROCHIMICA ACTA, 2017, 246 : 466 - 474
  • [27] Propylene epoxidation with in situ generated H2O2 in supercritical conditions
    Prieto, Alejandro
    Palomino, Miguel
    Diaz, Urbano
    Corma, Avelino
    CATALYSIS TODAY, 2014, 227 : 87 - 95
  • [28] In situ generation of H2O2 using MWCNT-Al/O2 system and possible application for glyphosate degradation
    Tan, Ni
    Yang, Zhao
    Gong, Xiao-bo
    Wang, Zhen-ran
    Fu, Tao
    Liu, Yong
    SCIENCE OF THE TOTAL ENVIRONMENT, 2019, 650 : 2567 - 2576
  • [29] Electrochemical Generation of Individual O2 Nanobubbles via H2O2 Oxidation
    Ren, Hang
    German, Sean R.
    Edwards, Martin A.
    Chen, Qianjin
    White, Henry S.
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2017, 8 (11): : 2450 - 2454
  • [30] Selective electrochemical H2O2 generation on the graphene aerogel for efficient electro-Fenton degradation of ciprofloxacin
    Wang, Yujing
    Chen, Jian
    Gao, Junxia
    Meng, Hongshan
    Chai, Shouning
    Jian, Yanfei
    Shi, Limin
    Wang, Yanbin
    He, Chi
    SEPARATION AND PURIFICATION TECHNOLOGY, 2021, 272