Honey-mediated synthesis of Cr2O3 nanoparticles and their potent anti-bacterial, anti-oxidant and anti-inflammatory activities
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Saba | S. Zafar | Iqra Arooj | Hamna Shahid
[1] M. Alsalhi,et al. Characterization of plants and seaweeds based corrosion inhibitors against microbially influenced corrosion in a cooling tower water environment , 2022, Arabian Journal of Chemistry.
[2] Zainab,et al. A study on green synthesis, characterization of chromium oxide nanoparticles and their enzyme inhibitory potential , 2022, Frontiers in Pharmacology.
[3] S. Rajeshkumar,et al. Antioxidant, anti-inflammatory activity of Thymus vulgaris-mediated selenium nanoparticles: An in vitro study , 2022, Journal of conservative dentistry : JCD.
[4] R. Kumar,et al. Biogenesis of MnO2 Nanoparticles Using Momordica Charantia Leaf Extract , 2022, ECS Transactions.
[5] M. Javed,et al. Biogenic Plant Mediated Synthesis of Monometallic Zinc and Bimetallic Copper/Zinc Nanoparticles and their Dye Adsorption and Antioxidant Studies , 2022, Inorganic Chemistry Communications.
[6] Sera Kang,et al. Gold Nanoparticles Green-Synthesized by the Suaeda japonica Leaf Extract and Screening of Anti-Inflammatory Activities on RAW 267.4 Macrophages , 2022, Coatings.
[7] A. Zille,et al. Synergistic Effects Between Metal Nanoparticles and Commercial Antimicrobial Agents: A Review , 2022, ACS applied nano materials.
[8] F. Erim,et al. Green synthesis of cerium oxide nanoparticles from turmeric and kinds of honey: characterisations, antioxidant and photocatalytic dye degradation activities , 2022, Advances in Natural Sciences: Nanoscience and Nanotechnology.
[9] R. Briandet,et al. Recent advances in nanotechnology for eradicating bacterial biofilm , 2022, Theranostics.
[10] S. Taduri,et al. In Vitro Anti-Inflammatory Activity of Green Synthesized Silver Nanoparticles and Leaf Methanolic Extract of Solanum khasianum Clarke , 2022, Proceedings of the National Academy of Sciences, India Section B: Biological Sciences.
[11] R. Chalannavar,et al. ZnO nanoparticles with spectroscopically controlled morphology, bioinspired from Holigarna grahamii (Wight) Kurz and delving its antioxidant and anticancer potential on A498 cell line , 2022, Materials Today Communications.
[12] A. El‐kott,et al. Bio-supported of Cu nanoparticles on the surface of Fe3O4 magnetic nanoparticles mediated by Hibiscus sabdariffa extract: Evaluation of its catalytic activity for synthesis of pyrano[3,2-c]chromenes and study of its anti-colon cancer properties , 2022, Arabian Journal of Chemistry.
[13] M. Iqbal,et al. Green synthesis of Iron (Fe) nanoparticles using Plumeria obtusa extract as a reducing and stabilizing agent: Antimicrobial, antioxidant and biocompatibility studies , 2022, Arabian Journal of Chemistry.
[14] I. Barišić,et al. Diffusion of OXA-48 carbapenemase among urinary isolates of Klebsiella pneumoniae in non-hospitalized elderly patients , 2022, BMC microbiology.
[15] S. Suganya,et al. Green inspired synthesis of ZnO nanoparticles and its characterizations with biofilm, antioxidant, anti-inflammatory, and anti-diabetic activities , 2022, Journal of Molecular Structure.
[16] Maťátková Olga,et al. Antimicrobial properties and applications of metal nanoparticles biosynthesized by green methods. , 2022, Biotechnology advances.
[17] Joham Ali,et al. Comparative analysis of synthesis, characterization, antimicrobial, antioxidant, and enzyme inhibition potential of roses petal based synthesized copper oxide nanoparticles , 2022, Materials Chemistry and Physics.
[18] B. Gault,et al. Understanding Alkali Contamination in Colloidal Nanomaterials to Unlock Grain Boundary Impurity Engineering , 2021, Journal of the American Chemical Society.
[19] V. L. Mangesh,et al. Biosynthesis, characterization, biological and photo catalytic investigations of Elsholtzia blanda and Chitosan mediated copper oxide nanoparticles , 2021, Arabian Journal of Chemistry.
[20] A. Pradhan,et al. An Introduction to Different Methods of Nanoparticles Synthesis , 2021, Bio-Nano Interface.
[21] S. Khan,et al. Biogenic Synthesis of MnO2 Nanoparticles With Leaf Extract of Viola betonicifolia for Enhanced Antioxidant, Antimicrobial, Cytotoxic, and Biocompatible Applications , 2021, Frontiers in Microbiology.
[22] P. Parhi,et al. Effect of calcination temperature on morphology and phase transformation of MnO2 nanoparticles: A step towards green synthesis for reactive dye adsorption. , 2021, Chemosphere.
[23] M. Bilal,et al. Environmentally friendly synthesis of Cr2O3 nanoparticles: Characterization, applications and future perspective ─ a review , 2021, Case Studies in Chemical and Environmental Engineering.
[24] W. Al-Awaida,et al. In vitro anti-inflammatory and antioxidant activities of ZnFe2 O4 and CrFe2 O4 nanoparticles synthesized using Boswellia carteri resin. , 2021, Journal of food biochemistry.
[25] S. Khan,et al. Green Synthesis of Chromium Oxide Nanoparticles for Antibacterial, Antioxidant Anticancer, and Biocompatibility Activities , 2021, International journal of molecular sciences.
[26] A. Rheima,et al. Impact of Chromium Oxide Nanoparticles on Growth and Biofilm Formation of Persistence Klebsiella pneumoniae Isolates , 2021 .
[27] Green Synthesis, Anti-cancer and Corrosion Inhibition Activity of Cr2O3 Nanoparticles , 2020, Biointerface Research in Applied Chemistry.
[28] M. Maaza,et al. Phyto-fabricated Cr2O3 nanoparticle for multifunctional biomedical applications. , 2020, Nanomedicine.
[29] Z. Nuru,et al. Structural and optical properties of green synthesized Cr2O3 nanoparticles , 2020 .
[30] J. Iqbal,et al. Facile green synthesis approach for the production of chromium oxide nanoparticles and their different in vitro biological activities , 2020, Microscopy research and technique.
[31] J. E. Choby,et al. Hypervirulent Klebsiella pneumoniae – clinical and molecular perspectives , 2020, Journal of internal medicine.
[32] Zabta Khan Shinwari,et al. Physiochemical properties and novel biological applications of Callistemon viminalis ‐mediated α‐Cr 2 O 3 nanoparticles , 2019, Applied Organometallic Chemistry.
[33] M. Falagas,et al. Clinical relevance of in vitro synergistic activity of antibiotics for multidrug-resistant Gram-negative infections: A systematic review. , 2019, Journal of global antimicrobial resistance.
[34] T. Russo,et al. Hypervirulent Klebsiella pneumoniae , 2019, Clinical Microbiology Reviews.
[35] Feng-sheng Li,et al. Facile preparation of Cr2O3 nanoparticles and their use as an active catalyst on the thermal decomposition of ammonium perchlorate , 2019, Journal of Energetic Materials.
[36] N. Al-Hada,et al. Comprehensive study on morphological, structural and optical properties of Cr2O3 nanoparticle and its antibacterial activities , 2019, Journal of Materials Science: Materials in Electronics.
[37] Aastha Chokshi,et al. Global Contributors to Antibiotic Resistance , 2019, Journal of global infectious diseases.
[38] F. Khan,et al. Biological Synthesis and Characterization of Chromium (iii) Oxide Nanoparticles , 2018, Engineering and Applied Science Letters.
[39] K. Shameli,et al. Ultrasmall superparamagnetic Fe3O4 nanoparticles: honey-based green and facile synthesis and in vitro viability assay , 2018, International journal of nanomedicine.
[40] R. M. D. Silva,et al. Honey Mediated Green Synthesis of Nanoparticles: New Era of Safe Nanotechnology , 2017 .
[41] L. Shao,et al. The antimicrobial activity of nanoparticles: present situation and prospects for the future , 2017, International journal of nanomedicine.
[42] T. Gomathi,et al. Green approach for synthesis of zinc oxide nanoparticles from Andrographis paniculata leaf extract and evaluation of their antioxidant, anti-diabetic, and anti-inflammatory activities , 2017, Bioprocess and Biosystems Engineering.
[43] M. Maaza,et al. Single-phase α-Cr2O3 nanoparticles’ green synthesis using Callistemon viminalis’ red flower extract , 2016 .