Open Access
Issue |
E3S Web Conf.
Volume 630, 2025
2025 International Conference on Eco-environmental Protection, Environmental Monitoring and Remediation (EPEMR 2025)
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Article Number | 01017 | |
Number of page(s) | 6 | |
Section | Smart Technologies for Environmental Monitoring and Pollution Mitigation | |
DOI | https://doi.org/10.1051/e3sconf/202563001017 | |
Published online | 22 May 2025 |
- Zhang Zhibo. Study on Environmental Fate and Oxidative Degradation Mechanism of Typical Drugs in Yangtze River Delta Integrated Demonstration Zone [D]. Shanghai Normal University. 2022.: 3 [Google Scholar]
- Thamlikitkul V, Tiengrim S, Thamthaweechok N, et al. Contamination by Antibioti c-Resistant Bacteria in Selected Environments in Thailand [J]. International Journal of Environmental Research and Public Health, 2019, 16(19): 3753-.DOI:10.3390/ijerph16193753.: 5-6 [CrossRef] [Google Scholar]
- Binh V N, Dang N, Anh N T K, et al. Antibiotics in the aquatic environment of Vietnam: Sources, concentrations, risk and control strategy [J]. Chemosphere, 2018, 197.: 438-450 [NASA ADS] [CrossRef] [PubMed] [Google Scholar]
- Shrestha S, Bista S, Byanjankar N, et al. Evaluation of bottled drinking water an d occurrence of multidrug-resistance and biofilm producing bacteria in Nepal [J]. Environmental Pollution, 2024(Jan.): 341.: 122896 [CrossRef] [Google Scholar]
- Wang Jialin, Pan Jinwei, Liu Fei. Study on the characteristics and causes of antibiotic pollution in different types of aquifers [J]. Hydrogeology and Engineering Geology, 2024,51(02): 13-22. 10.16030/j.cnki.issn.1000-3665.3008. 2018,38(01): 320-329. DOI: 10.19674/j.cnki.ISSN1000-6923.2018.0038.:320. [Google Scholar]
- Zhao Min. Study on advanced treatment of pharmaceutical wastewater by three-dimensional electrode method [D]. Zhengzhou University. 2012.:21-45 [Google Scholar]
- Jin Lei. Production and operation of removing new antibiotics pollutants from raw water by powdered activated carbon [J]. Water purification technology, 2024,43 (07): 63-68. 10.15890/j.cnki.jsjs.2024.07.007.: 63-68. [Google Scholar]
- Salahshoori I, Jorabchi M N, Mazaheri A, et al. Tackling antibiotic contaminatio ns in wastewater with novel Modified-MOF nanostructures: A study of molecular simulations and DFT calculations [J]. Environmental Research, 2024, 252. DOI:10.1016/j.envres.2024.118856.69 [Google Scholar]
- Liu Yue. Study on tetracycline adsorption efficiency of aerobic granular sludge-based biochar [D]. Northeast Agricultural University, 2020.: 12-52 [Google Scholar]
- Liu Kuizhao. Study on the removal efficiency of tetracycline and ciprofloxacin from water by potassium ferrate enhanced polyaluminum chloride [D]. Yantai University. 2023.: 17-59 [Google Scholar]
- Chen Hanyang, Zhao Ying, Kang Dejun, Gong Bin, Xue Haotian, Li Qingxu, Guo Wenshan, Huang Heqiao. Research progress of biochar coupling process for treating pharmaceutical wastewater containing antibiotics [J/OL]. Journal of Environmental Engineering Technology: 1-16. [Google Scholar]
- Wang Yixiang, Li Jing, Cao Haiyan, et al. Treatment methods of three antibiotics in wastewater with industrial water-absorbent resin [J]. Applied Chemical Industry, 2018,47 (05): 863-866. DOI: 10.16581/j.cnki.issn1671-3206.20180330.048 [Google Scholar]
- Liang Chao. Study on Treatment of Typical Polycyclic Aromatic Hydrocarbons and Antibiotics in Wastewater by Low-temperature Plasma [D]. Anhui Jianzhu University, 2024. DOI: 10.27784/d.cnki.gahjz.2024.000331 [Google Scholar]
- Rong Yuhong, Zhang Faming, Yang Juan, et al. Study on the Remediation Potential of Vetiveria zizanioides on Sulfonamide-contaminated Water [J]. Journal of Ecology and Rural Environment, 2022,38(06):795-801. [Google Scholar]
- Panja S, Sarkar D, Datta R. Removal of tetracycline and ciprofloxacin from wastewater by vetiver grass (Chrysopogon zizanioides (L.) Roberty) as a function of nutrient concentrations[J]. Environmental Science and Pollution Research, 2020, 27(28):34951-34965. [CrossRef] [PubMed] [Google Scholar]
- Singh V, Pandey B, Suthar S. Phytotoxicity and degradation of antibiotic ofloxa cin in duckweed (Spirodela polyrhiza) system[J]. Ecotoxicology and Environmental Safety, 2019, 179(SEP.):88-95. [CrossRef] [PubMed] [Google Scholar]
- Sayen S, Rocha C, Silva C, et al. Enrofloxacin and copper plant uptake by Phra gmitesaustralis from a liquid digestate: Single versus combined application [J]. The Science of the Total Environment, 2019, 664(MAY 10):188-202. [CrossRef] [PubMed] [Google Scholar]
- Xu Tiantian, Jin Yabin, Gao Zhanyao, Zheng Yuxin, Liang Zhou. Formation mechanism of layered BiOBr and its photocatalytic degradation of antibiotics [J]. Industrial Catalysis, 2024,32(07):30-36. [Google Scholar]
- Lin Shiyin, Zhang Yuhang, Xie Jimiao, Mao Na. Preparation of Cu_2O/Ag/g-C_3N_4 composite and its photocatalytic degradation of antibiotics [J]. Industrial Catalysis, 2024,32(07):43-48. [Google Scholar]
- He Yuhao. Experimental study on treatment of antibiotic wastewater by catalytic wet oxidation[D]. Shandong Jianzhu university, 2022. doi: 10.27273/d.cnki.gsajc.2022.00271.: 27-36. [Google Scholar]
- Kong Weiyu. Study on key parameters and performance of advanced treatment of ofloxacin in wastewater by electrocatalytic ozone [D]. beijing university of chemical technology.2024.: 9-49. [Google Scholar]
- Xu Wen. Construction of three-phase interface of new gas diffusion electrode and study on electrocatalytic ozone degradation of medical wastewater [D]. Xi 'an University of Architecture and Technology. 2023.: 53-67. [Google Scholar]
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