Tannic acid reinforced electro-Fenton system based on GO-Fe3O4/NF cathode for the efficient catalytic degradation of PNP

被引:24
作者
Dang, Yuan [1 ]
Bai, Yangyang [1 ]
Zhang, Yichen [1 ]
Yang, Xiaohan [1 ]
Sun, Xiaoqin [1 ]
Yu, Sha [1 ]
Zhou, Yuanzhen [1 ]
机构
[1] Xian Univ Architecture & Technol, Sch Chem & Chem Engn, 13 Yanta Rd, Xian 710055, Shaanxi, Peoples R China
关键词
Electro-Fenton; GO-Fe3O4; cathode; Tannic acid; P-nitrophenol; ADVANCED OXIDATION PROCESSES; P-NITROPHENOL DEGRADATION; WASTE-WATER TREATMENT; GRAPHENE OXIDE; AQUEOUS-SOLUTION; NI FOAM; IRON; PEROXYMONOSULFATE; ELECTROOXIDATION; NANOCOMPOSITES;
D O I
10.1016/j.chemosphere.2021.133046
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
In order to overcome the sluggish kinetics of the redox conversion between Fe3+ and Fe2+ in Fenton process, we established a novel electro-Fenton system based on GO-Fe3O4 cathode and tannic acid (TA) for the efficient degradation of p-nitrophenol (PNP). Under the optimal degradation parameters (including the initial PNP concentration of 20 mg L-1, pH = 5, current density of 30 mA cm(-2) and feeding ratio of PNP: TA = 1:2), the TA reinforced GO-Fe3O4 electro-Fenton system exhibited the removal rate of PNP over 90.1 +/- 0.2%, the COD removal rate of 69.5 +/- 0.84% and satisfactory reusability (with the removal rate of -80% after 5 recycles). The excellent degradation performance of the proposed TA reinforced GO-Fe3O4 electro-Fenton system was partly attributed to the optimized morphology (with the particle size of Fe3O4 reduced to tens of nanometers, pore size decreased by -80% and pore volume increased by 24.3 times) and larger specific surface area (increased by 72.7 times) after compositing GO with Fe3O4 , which exposed more active sites. In return, the electron transfer process, the two-electron oxygen reduction reaction (ORR) and the degradation efficiency were promoted in the cooperation of GO and Fe3O4 . Moreover, the incorporated TA would form a TA-Fe(III) complex to promote the reduction reaction from Fe3+ to Fe2+, which strengthened the self-circulation of Fe2+ and Fe3+ and indirectly enhanced the conversion of H2O2 to ROS to decompose PNP into smaller organic fragments or mineralize into CO2, H2O, NO2- or NO3-, etc. Obviously, the incorporation of TA provided a promising strategy to improve the electro-Fenton efficiency and realize the efficient removal of PNP in wastewater.
引用
收藏
页数:12
相关论文
共 74 条
[31]   Biocompatible and Stable GO-Coated Fe3O4 Nanocomposite: A Robust Drug Delivery Carrier for Simultaneous Tumor MR Imaging and Targeted Therapy [J].
Li, Dong ;
Deng, Mingwu ;
Yu, Ziyou ;
Liu, Wei ;
Zhou, Guangdong ;
Wang, Xiansong ;
Yang, Da-Peng ;
Zhang, Wenjie .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (06) :2143-2154
[32]   Graphene oxide: A promising nanomaterial for energy and environmental applications [J].
Li, Fen ;
Jiang, Xue ;
Zhao, Jijun ;
Zhang, Shengbai .
NANO ENERGY, 2015, 16 :488-515
[33]   Degradation of p-nitrophenol (PNP) in aqueous solution by Fe0-PM-PS system through response surface methodology (RSM) [J].
Li, Jun ;
Liu, Qi ;
Ji, Qing Qing ;
Lai, Bo .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2017, 200 :633-646
[34]   Modifying organic carbon in Fe3O4-loaded schwertmannite to improve heterogeneous Fenton activity through accelerating Fe(II) generation [J].
Li, Ting ;
Chen, Yanmei ;
Wang, Xiaomeng ;
Liang, Jianru ;
Zhou, Lixiang .
APPLIED CATALYSIS B-ENVIRONMENTAL, 2021, 285
[35]   Producing ' OH, SO 4' ? and ' O 2? in heterogeneous Fenton reaction induced by Fe 3 O 4-modified schwertmannite [J].
Li, Ting ;
Wang, Xiaomeng ;
Chen, Yanmei ;
Liang, Jianru ;
Zhou, Lixiang .
CHEMICAL ENGINEERING JOURNAL, 2020, 393
[36]   Strongly enhanced Fenton degradation of organic pollutants by cysteine: An aliphatic amino acid accelerator outweighs hydroquinone analogues [J].
Li, Tuo ;
Zhao, Zhenwen ;
Wang, Quan ;
Xie, Pengfei ;
Ma, Jiahai .
WATER RESEARCH, 2016, 105 :479-486
[37]   Electrochemical sensor for a photoassisted heterogeneous Fenton self-oxidation signal amplification strategy [J].
Li, Wenjun ;
Yang, Yue ;
Ma, Chaoyun ;
Song, Yiju ;
Qiao, Xiuwen ;
Hong, Chenglin .
SENSORS AND ACTUATORS B-CHEMICAL, 2020, 324
[38]   Boosting tumor treatment by dredging the hurdles of chemodynamic therapy synergistic ion therapy [J].
Liu, Junjie ;
Jin, Yajie ;
Song, Zan ;
Xu, Lihua ;
Yang, Yue ;
Zhao, Xiu ;
Wang, Binghua ;
Liu, Wei ;
Zhang, Kaixiang ;
Zhang, Zhenzhong ;
Shi, Jinjin .
CHEMICAL ENGINEERING JOURNAL, 2021, 411
[39]   Role of radical and non-radical pathway in activating persulfate for degradation of p-nitrophenol by sulfur-doped ordered mesoporous carbon [J].
Liu, Shiyu ;
Lai, Cui ;
Li, Bisheng ;
Zhang, Chen ;
Zhang, Mingming ;
Huang, Danlian ;
Qin, Lei ;
Yi, Huan ;
Liu, Xigui ;
Huang, Fanglong ;
Zhou, Xuerong ;
Chen, Liang .
CHEMICAL ENGINEERING JOURNAL, 2020, 384
[40]   Ferrous-Supply-Regeneration Nanoengineering for Cancer-Cell-Specific Ferroptosis in Combination with Imaging-Guided Photodynamic Therapy [J].
Liu, Tao ;
Liu, Wenlong ;
Zhang, Mingkang ;
Yu, Wuyang ;
Gao, Fan ;
Li, Chuxin ;
Wang, Shi-Bo ;
Feng, Jun ;
Zhang, Xian-Zheng .
ACS NANO, 2018, 12 (12) :12181-12192