Evaluation of photocathode coupling-mediated hydroxychloroquine degradation in a single-chamber microbial fuel cell based on electron transfer mechanism and power generation
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Xing Yuan | J. Qu | Chengzhi Wang | Yi Xing | Xiaolin Zhu | Huizi Zheng | Ya-Nan Zhang | Kan Zhang
[1] C. Martínez-Huitle,et al. Achieving Electrochemical-Sustainable-Based Solutions for Monitoring and Treating Hydroxychloroquine in Real Water Matrix , 2022, Applied Sciences.
[2] C. Bernard,et al. Influence of aphotic haloclines and euxinia on organic biomarkers and microbial communities in a thalassohaline and alkaline volcanic crater lake , 2021, Geobiology.
[3] F. Gümüş,et al. Removal of Hydroxychloroquine Using Engineered Biochar from Algal Biodiesel Industry Waste: Characterization and Design of Experiment (DoE) , 2021, Arabian Journal for Science and Engineering.
[4] F. L. Hegeto,et al. Photocatalytic degradation of hydroxychloroquine using ZnO supported on clinoptilolite zeolite. , 2021, Water science and technology : a journal of the International Association on Water Pollution Research.
[5] W. Alhazzani,et al. The efficacy and safety of hydroxychloroquine for COVID-19 prophylaxis: A systematic review and meta-analysis of randomized trials , 2021, PloS one.
[6] Huajun Zheng,et al. Black Phosphorus Quantum Dot-Sensitized TiO2 Nanotube Arrays with Enriched Oxygen Vacancies for Efficient Photoelectrochemical Water Splitting , 2020 .
[7] N. Bensalah,et al. Degradation of hydroxychloroquine by electrochemical advanced oxidation processes , 2020, Chemical Engineering Journal.
[8] Xiaolin Zhu,et al. Photocatalytic degradation and rate constant prediction of chlorophenols and bisphenols by H3PW12O40/GR/TiO2 composite membrane. , 2020, Environmental research.
[9] Yunjeong Yang,et al. Adsorptive removal of tetracycline from aqueous solution by maple leaf-derived biochar. , 2020, Bioresource technology.
[10] Min Zhu,et al. Chemical bonding black phosphorus with TiO2 and carbon toward high-performance lithium storage , 2020 .
[11] C. Rensing,et al. Flagella act as Geobacter biofilm scaffolds to stabilize biofilm and facilitate extracellular electron transfer. , 2019, Biosensors & bioelectronics.
[12] G. Kersh,et al. The Effect of pH on Antibiotic Efficacy against Coxiella burnetii in Axenic Media , 2019, Scientific Reports.
[13] N. Ren,et al. Operation strategy of cubic-meter scale microbial electrochemistry system in a municipal wastewater treatment plant , 2019, Journal of Power Sources.
[14] Dario Dabić,et al. The role of photodegradation in the environmental fate of hydroxychloroquine. , 2019, Chemosphere.
[15] E. Antolini. Photoelectrocatalytic fuel cells and photoelectrode microbial fuel cells for wastewater treatment and power generation , 2019, Journal of Environmental Chemical Engineering.
[16] Huijie Hou,et al. Synergic degradation of 2,4,6-trichlorophenol in microbial fuel cells with intimately coupled photocatalytic-electrogenic anode. , 2019, Water research.
[17] Guangxue Wu,et al. System performance and microbial community in ethanol-fed anaerobic reactors acclimated with different organic carbon to sulfate ratios. , 2019, Bioresource technology.
[18] Yingjie Li,et al. Scaling up floating air cathodes for energy-efficient H2O2 generation and electrochemical advanced oxidation processes , 2019, Electrochimica Acta.
[19] Xing Yuan,et al. Synthesis of graphene/black phosphorus hybrid with highly stable P-C bond towards the enhancement of photocatalytic activity. , 2019, Environmental pollution.
[20] H. Ngo,et al. Challenges in the application of microbial fuel cells to wastewater treatment and energy production: A mini review. , 2018, The Science of the total environment.
[21] Guo-ping Sheng,et al. Visible-light-enhanced Cr(VI) reduction at Pd-decorated silicon nanowire photocathode in photoelectrocatalytic microbial fuel cell. , 2018, The Science of the total environment.
[22] T. Morohoshi,et al. Biofilm Formation and Degradation of Commercially Available Biodegradable Plastic Films by Bacterial Consortiums in Freshwater Environments , 2018, Microbes and environments.
[23] Hui Wu,et al. Modular Engineering Intracellular NADH Regeneration Boosts Extracellular Electron Transfer of Shewanella oneidensis MR-1. , 2018, ACS synthetic biology.
[24] Yuqi Cui,et al. Effect of Ti3+ on enhancing photocatalytic and photoelectrochemical properties of TiO2 nanorods/nanosheets photoelectrode , 2018 .
[25] C. Saint,et al. Microbial community and bioelectrochemical activities in MFC for degrading phenol and producing electricity: Microbial consortia could make differences , 2018 .
[26] Mengqiang Sun,et al. Functional kaolin supported nanoscale zero-valent iron as a Fenton-like catalyst for the degradation of Direct Black G. , 2017, Chemosphere.
[27] Panagiotis Lianos,et al. Review of recent trends in photoelectrocatalytic conversion of solar energy to electricity and hydrogen , 2017 .
[28] Han-Seung Shin,et al. A comprehensive overview on electro-active biofilms, role of exo-electrogens and their microbial niches in microbial fuel cells (MFCs). , 2017, Chemosphere.
[29] M. D. Aitken,et al. Rugosibacter aromaticivorans gen. nov., sp. nov., a bacterium within the family Rhodocyclaceae, isolated from contaminated soil, capable of degrading aromatic compounds. , 2017, International journal of systematic and evolutionary microbiology.
[30] Yongyou Hu,et al. Enhanced simultaneous decolorization of azo dye and electricity generation in microbial fuel cell (MFC) with redox mediator modified anode , 2017 .
[31] R. Luqmani,et al. Hydroxychloroquine retinopathy , 2017, Eye.
[32] M. Wong,et al. Co-sputtered boron-doped titanium dioxide films as photocatalysts , 2016 .
[33] B. R. Gurjar,et al. Oxidative Degradation of Quinoline Using Nanoscale Zero-Valent Iron Supported by Granular Activated Carbon , 2016 .
[34] Zisheng Zhang,et al. Synergetic photoelectrocatalytic reactors for environmental remediation: A review , 2015 .
[35] Wei Huang,et al. Black phosphorus quantum dots. , 2015, Angewandte Chemie.
[36] Jochen Blumberger,et al. Multi-haem cytochromes in Shewanella oneidensis MR-1: structures, functions and opportunities , 2015, Journal of The Royal Society Interface.
[37] Hui Li,et al. Microwave-assisted preparation of self-doped TiO2 nanotube arrays for enhanced photoelectrochemical water splitting , 2015 .
[38] R. L. Schroeder,et al. Chloroquine and hydroxychloroquine binding to melanin: Some possible consequences for pathologies , 2014, Toxicology reports.
[39] B. Logan,et al. Air humidity and water pressure effects on the performance of air-cathode microbial fuel cell cathodes , 2014 .
[40] B. Saini,et al. Characterization of four new photodegradation products of hydroxychloroquine through LC-PDA, ESI-MSn and LC-MS-TOF studies. , 2013, Journal of pharmaceutical and biomedical analysis.
[41] Zhao-hui Yang,et al. Analysis of oxygen reduction and microbial community of air-diffusion biocathode in microbial fuel cells. , 2013, Bioresource technology.
[42] Shen Yu,et al. Pharmaceutical residues in tidal surface sediments of three rivers in southeastern China at detectable and measurable levels , 2013, Environmental Science and Pollution Research.
[43] Guo-hua Liu,et al. Biological treatment of hexanitrostilbene (HNS) produced wastewater using an anaerobic–aerobic immobilized microbial system , 2012 .
[44] L. Altunina,et al. The effect of film-corrected light on oxygenase activity of microorganisms of the genus Pseudomonas , 2011, Microbiology.
[45] F. P. van der Zee,et al. Impact and application of electron shuttles on the redox (bio)transformation of contaminants: a review. , 2009, Biotechnology advances.
[46] B. Logan. Exoelectrogenic bacteria that power microbial fuel cells , 2009, Nature Reviews Microbiology.
[47] Shunni Zhu,et al. Degradation of quinoline by Rhodococcus sp. QL2 isolated from activated sludge. , 2008, Journal of hazardous materials.
[48] Bruce E Logan,et al. Microbial fuel cells--challenges and applications. , 2006, Environmental science & technology.
[49] Stefano Freguia,et al. Microbial fuel cells: methodology and technology. , 2006, Environmental science & technology.
[50] A. Delort,et al. 1H Nuclear Magnetic Resonance Spectroscopy-Based Studies of the Metabolism of Food-Borne Carcinogen 2-Amino-3-Methylimidazo[4,5-f]Quinoline by Human Intestinal Microbiota , 2005, Applied and Environmental Microbiology.
[51] Byung Hong Kim,et al. Enrichment of microbial community generating electricity using a fuel-cell-type electrochemical cell , 2004, Applied Microbiology and Biotechnology.
[52] S. Brorson,et al. An in vitro study of the susceptibility of mobile and cystic forms of Borrelia burgdorferi to hydroxychloroquine , 2002, International microbiology : the official journal of the Spanish Society for Microbiology.
[53] L. Gao,et al. Hydrophilicity of TiO2 films prepared by liquid phase deposition , 2000 .
[54] G. Unden. Transcriptional regulation and energetics of alternative respiratory pathways in facultatively anaerobic bacteria , 1998 .