Superior photodegradation efficiency of enrofloxacin by aluminum-doped Ni0.4Mn0.3Cu0.3Al0.4Fe1.6O4 (X = 0, 0.4) spinel nanoparticles synthesized via sol–gel method
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Publisher
Springer Science and Business Media LLC
Link
https://link.springer.com/content/pdf/10.1007/s11144-024-02619-9.pdf
Reference45 articles.
1. Xiao Y, Lyu H, Yang C, Zhao B, Wang L, Tang J (2021) Graphitic carbon nitride/biochar composite synthesized by a facile ball-milling method for the adsorption and photocatalytic degradation of enrofloxacin. J Environ Sci 103:93–107
2. Zheng J, Liu C, Wang Z, Shi Y, Hou Y, Bi J, Wu L (2023) Improving photocatalytic degradation of enrofloxacin over TiO2 nanosheets with Ti3+ sites by coordination activation. Appl Catal A 660:119217
3. Rahmani H, Mahjoub AR, Khazaee Z (2023) Bimetallic CuAg alloyed nanoparticles anchored on CdS nanorods for the photocatalytic degradation of enrofloxacin. ACS Appl Nano Mater 6:4554–4566
4. Wang K, Zhan S, Zhang D, Sun H, Jin X, Wang J (2021) Three-dimensional graphene encapsulated Ag–ZnFe 2 O 4 flower-like nanocomposites with enhanced photocatalytic degradation of enrofloxacin. RSC Adv 11:4723–4739
5. Wang W, Zhang J, Chen T, Sun J, Ma X, Wang Y, Wang J, Xie Z (2020) Preparation of TiO2-modified biochar and its characteristics of photo-catalysis degradation for enrofloxacin. Sci Rep 10:6588
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