Combination tanning mechanism inspired environmentally benign catalyst for efficient degradation of tetracycline
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Q. Yan | Meng Xiao | Shuangmei Liu | Yu Peng | Wenqian Qi | Hui Mao
[1] Jun Ma,et al. High-efficiency removal of tetracycline from water by electrolysis-assisted NZVI: mechanism of electron transfer and redox of iron , 2023, RSC advances.
[2] Meng Xiao,et al. High-performance Removal of Tetracycline Enabled by Fe0 Nanoparticles Supported on Carbon@ZIF-8 , 2022, Chemical Research in Chinese Universities.
[3] Y. Ng,et al. Understanding photoelectrocatalytic degradation of tetracycline over three-dimensional coral-like ZnO/BiVO4 nanocomposite , 2021 .
[4] M. Fawzy,et al. Efficient Adsorptive Removal of Tetracycline from Aqueous Solution using Phytosynthesized Nano-zero Valent Iron , 2021, Journal of Saudi Chemical Society.
[5] D. Boffito,et al. ZnAl hydrotalcites modified with nanocomposites nZVI–PAA for environmental remediation , 2021 .
[6] Amjad Ali,et al. Simultaneous removal of nitrate, manganese, and tetracycline by Zoogloea sp. MFQ7: Adsorption mechanism of tetracycline by biological precipitation. , 2021, Bioresource technology.
[7] Zetian Zhang,et al. A chrome-free combination tanning strategy: based on silicic acid and plant tannin , 2021, Journal of Leather Science and Engineering.
[8] Rui Wei,et al. Facile synthesis of oxygen vacancies enriched α-Fe2O3 for peroxymonosulfate activation: A non-radical process for sulfamethoxazole degradation. , 2021, Journal of hazardous materials.
[9] I. Letofsky-Papst,et al. A novel nZVI-bentonite nanocomposite to remove trichloroethene (TCE) from solution. , 2021, Chemosphere.
[10] Jianlong Wang,et al. Construction of three-dimensional reduced graphene oxide wrapped nZVI doped with Al2O3 as the ternary Fenton-like catalyst: Optimization, characterization and catalytic mechanism. , 2021, The Science of the total environment.
[11] Yujie Feng,et al. Enhancing methane production of synthetic brewery water with granular activated carbon modified with nanoscale zero-valent iron (NZVI) in anaerobic system. , 2020, The Science of the total environment.
[12] Linda Peters,et al. Chitosan: A review of sources and preparation methods. , 2020, International journal of biological macromolecules.
[13] Mei-hua Zhao,et al. Interaction between tetracycline and microorganisms during wastewater treatment: A review. , 2020, The Science of the total environment.
[14] A. Dettmer,et al. Alternative uses for tannery wastes: a review of environmental, sustainability, and science , 2020, Journal of Leather Science and Engineering.
[15] D. Astruc. The supramolecular redox functions of metallomacromolecules , 2020, Journal of Leather Science and Engineering.
[16] Jun Ma,et al. Novel synthesis of aluminum hydroxide gel-coated nano zero-valent iron and studies of its activity in flocculation-enhanced removal of tetracycline. , 2020, Journal of environmental sciences.
[17] Junliang Zhang,et al. Visible light photocatalytic degradation of tetracycline over TiO2 , 2020, Chemical Engineering Journal.
[18] Yuhuan Sun,et al. Evaluating phytotoxicity of bare and starch-stabilized zero-valent iron nanoparticles in mung bean. , 2019, Chemosphere.
[19] A. Mukherjee,et al. Tetracycline removal using green synthesized bimetallic nZVI-Cu and bentonite supported green nZVI-Cu nanocomposite: A comparative study. , 2019, Journal of environmental management.
[20] Lujia Han,et al. Characteristics of tetracycline adsorption by cow manure biochar prepared at different pyrolysis temperatures. , 2019, Bioresource technology.
[21] Yuan Ma,et al. Facile synthesis of α-FeOOH/γ-Fe2O3 by a pH gradient method and the role of γ-Fe2O3 in H2O2 activation under visible light irradiation , 2018, Chemical Engineering Journal.
[22] Jun Ma,et al. Immobilization of NZVI in polydopamine surface-modified biochar for adsorption and degradation of tetracycline in aqueous solution , 2018, Frontiers of Environmental Science & Engineering.
[23] B. Lai,et al. Effect of initial pH on the tetracycline (TC) removal by zero-valent iron: Adsorption, oxidation and reduction , 2018, Chemical Engineering Journal.
[24] J. Jagiello,et al. Tetracycline removal with activated carbons produced by hydrothermal carbonisation of Agave americana fibres and mimosa tannin , 2018 .
[25] G. Zeng,et al. Physicochemical transformation of carboxymethyl cellulose-coated zero-valent iron nanoparticles (nZVI) in simulated groundwater under anaerobic conditions , 2017 .
[26] M. Abbas,et al. A Novel Hydrothermal Approach for the Synthesis of Flower-Like Fe2O3/Fe Foam Nanocrystals and Their Superior Performance in Fisher–Tropsch Synthesis , 2017, Catalysis Letters.
[27] H. Jiang,et al. Environmental transmission electron microscopy investigations of Pt-Fe2O3 nanoparticles for nucleating carbon nanotubes , 2016 .
[28] Saiqa Ikram,et al. Chitosan Based Scaffolds and Their Applications in Wound Healing , 2016 .
[29] Liang Peng,et al. High efficient removal of tetracycline from solution by degradation and flocculation with nanoscale zerovalent iron , 2015 .
[30] R. Naidu,et al. Nanoscale zero-valent iron as a catalyst for heterogeneous Fenton oxidation of amoxicillin , 2014 .
[31] A. Dey,et al. Spectroscopic characterization of a phenolate bound Fe(II)-O2 adduct: gauging the relative "push" effect of a phenolate axial ligand. , 2014, Chemical communications.
[32] G. Ayoko,et al. Degradation of simazine from aqueous solutions by diatomite-supported nanosized zero-valent iron composite materials. , 2013, Journal of hazardous materials.
[33] A. Pizzi,et al. Characterisation of maritime pine (Pinus pinaster) bark tannins extracted under different conditions by spectroscopic methods, FTIR and HPLC , 2013 .
[34] S. Rayalu,et al. Unprecedented Chitin and Chitosan: A Chemical Overview , 2013, Journal of Polymers and the Environment.
[35] S. Ghoshal,et al. Systematic comparison of the size, surface characteristics and colloidal stability of zero valent iron nanoparticles pre- and post-grafted with common polymers , 2011 .
[36] Hanjin Luo,et al. Removal of tetracycline from aqueous solutions using polyvinylpyrrolidone (PVP-K30) modified nanoscale zero valent iron. , 2011, Journal of hazardous materials.
[37] H. Wu,et al. One-step room-temperature synthesis of Au@Pd core–shell nanoparticles with tunable structure using plant tannin as reductant and stabilizer , 2011 .
[38] D. Griffon,et al. Effect of collagen II coating on mesenchymal stem cell adhesion on chitosan and on reacetylated chitosan fibrous scaffolds , 2010, Journal of materials science. Materials in medicine.
[39] K. McMahon,et al. Tetracycline resistance genes in activated sludge wastewater treatment plants. , 2007, Water research.
[40] A Pawlak,et al. Thermogravimetric and FTIR studies of chitosan blends , 2003 .
[41] S. Hussain,et al. In vitro biocompatibility of nanoscale zerovalent iron particles (NZVI) synthesized using tea polyphenols , 2010 .