Multi-round recycling of green waste for the production of iron nanoparticles: synthesis, characterization, and prospects in remediation
暂无分享,去创建一个
Á. Szilágyi | Z. Kónya | M. Kotormán | M. Balázs | M. Kiricsi | Andrea Rónavári | Csaba Molnár | I. Ilisz
[1] N. Verma,et al. Role of Biogenic Capping Agents in the Synthesis of Metallic Nanoparticles and Evaluation of Their Therapeutic Potential , 2022, Frontiers in Nanotechnology.
[2] M. Kumar,et al. Green Synthesis of Iron Nanoparticles from Spinach Leaf and Banana Peel Aqueous Extracts and Evaluation of Antibacterial Potential , 2021, Journal of Nanomaterials.
[3] M. Qadir,et al. Biologically synthesized iron nanoparticles (FeNPs) from Phoenix dactylifera have anti-bacterial activities , 2021, Scientific Reports.
[4] Mekonnen Maschal Tarekegn,et al. Correction: Nano zero valent iron (nZVI) particles for the removal of heavy metals (Cd2+, Cu2+ and Pb2+) from aqueous solutions , 2021, RSC advances.
[5] F. Coulon,et al. Nanoremediation technologies for sustainable remediation of contaminated environments: Recent advances and challenges. , 2021, Chemosphere.
[6] Z. Kónya,et al. Green Silver and Gold Nanoparticles: Biological Synthesis Approaches and Potentials for Biomedical Applications , 2021, Molecules.
[7] S. Alsheheri. Nanocomposites containing titanium dioxide for environmental remediation , 2021, Designed monomers and polymers.
[8] Z. Kónya,et al. Nanoremediation: Tiny objects solving Huge environmental problems. , 2020, Recent patents on nanotechnology.
[9] L. Ruiz‐Rubio,et al. Zero-Valent Iron Nanoparticles for Soil and Groundwater Remediation , 2020, International journal of environmental research and public health.
[10] A. Matharu,et al. Highly stable AgNPs prepared via a novel green approach for catalytic and photocatalytic removal of biological and non-biological pollutants. , 2020, Environment international.
[11] A. Aziz,et al. Simple rapid stabilization method through citric acid modification for magnetite nanoparticles , 2020, Scientific Reports.
[12] M. Krebsz,et al. Synthesis and Application of Zero-Valent Iron Nanoparticles in Water Treatment, Environmental Remediation, Catalysis, and Their Biological Effects , 2020, Nanomaterials.
[13] M. Genisoglu,et al. Use of nano zero-valent iron coated coffee grounds for removal of Zn (II) and Ni (II) from aqueous solutions , 2019, DESALINATION AND WATER TREATMENT.
[14] Sanda Rončević,et al. Characterization of nZVI nanoparticles functionalized by EDTA and dipicolinic acid: a comparative study of metal ion removal from aqueous solutions , 2019, RSC advances.
[15] E. G. Maina,et al. Catalytic degradation of methylene blue by iron nanoparticles synthesized using Galinsoga parviflora, Conyza bonariensis and Bidens pilosa leaf extracts , 2019, SN Applied Sciences.
[16] M. Moniruzzaman,et al. Mechanistic investigation of phytochemicals involved in green synthesis of gold nanoparticles using aqueous Elaeis guineensis leaves extract: Role of phenolic compounds and flavonoids , 2019, Biotechnology and applied biochemistry.
[17] Jingkang Wang,et al. Nanomaterials for the Removal of Heavy Metals from Wastewater , 2019, Nanomaterials.
[18] L. Cumbal,et al. Green Synthesis of Iron Nanoparticles: Application on the Removal of Petroleum Oil from Contaminated Water and Soils , 2018, Journal of Nanotechnology.
[19] J. Tuček,et al. Iron and Iron Oxide Nanoparticles Synthesized Using Green Tea Extract: Improved Ecotoxicological Profile and Ability to Degrade Malachite Green. , 2018, ACS sustainable chemistry & engineering.
[20] Michael K Danquah,et al. Review on nanoparticles and nanostructured materials: history, sources, toxicity and regulations , 2018, Beilstein journal of nanotechnology.
[21] I. Boros,et al. Biosynthesized silver and gold nanoparticles are potent antimycotics against opportunistic pathogenic yeasts and dermatophytes , 2018, International journal of nanomedicine.
[22] M. Gil-Díaz,et al. Comparing different commercial zero valent iron nanoparticles to immobilize As and Hg in brownfield soil. , 2017, The Science of the total environment.
[23] I. Boros,et al. Biological activity of green-synthesized silver nanoparticles depends on the applied natural extracts: a comprehensive study , 2017, International journal of nanomedicine.
[24] Z. A. Majid,et al. Recent progress on Fe-based nanoparticles: Synthesis, properties, characterization and environmental applications , 2016 .
[25] I. Kiss,et al. Impact of the morphology and reactivity of nanoscale zero-valent iron (NZVI) on dechlorinating bacteria. , 2016, Water research.
[26] Mingyi Fan,et al. Nanoscale zero-valent metals: a review of synthesis, characterization, and applications to environmental remediation , 2016, Environmental Science and Pollution Research.
[27] Á. Kukovecz,et al. Environmentally benign synthesis methods of zero valent iron nanoparticles , 2016 .
[28] J. Six,et al. Soil biodiversity and human health , 2015, Nature.
[29] F. Namvar,et al. Nanoparticles Biosynthesized by Fungi and Yeast: A Review of Their Preparation, Properties, and Medical Applications , 2015, Molecules.
[30] J. Oszmiański,et al. Concentrated green tea supplement: biological activity and molecular mechanisms. , 2015, Life sciences.
[31] Renato Grillo,et al. Engineered nanoparticles and organic matter: a review of the state-of-the-art. , 2015, Chemosphere.
[32] R. Naidu,et al. Green synthesis of iron nanoparticles by various tea extracts: comparative study of the reactivity. , 2014, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[33] T. C. Taranath,et al. Biosynthesis of nanoparticles using microbes- a review. , 2014, Colloids and surfaces. B, Biointerfaces.
[34] N. Pathak,et al. Phytochemical Evaluation, Antimicrobial Activity, and Determination of Bioactive Components from Leaves of Aegle marmelos , 2014, BioMed research international.
[35] A. Love,et al. “Green” Nanotechnologies: Synthesis of Metal Nanoparticles Using Plants , 2014, Acta naturae.
[36] E. Joner,et al. Effects of nano-sized zero-valent iron (nZVI) on DDT degradation in soil and its toxicity to collembola and ostracods. , 2013, Chemosphere.
[37] M. Wełna,et al. Multi-element analysis, bioavailability and fractionation of herbal tea products , 2013 .
[38] Yusuf Chisti,et al. Synthesis of metallic nanoparticles using plant extracts. , 2013, Biotechnology advances.
[39] Rajandrea Sethi,et al. A Comparison Between Field Applications of Nano-, Micro-, and Millimetric Zero-Valent Iron for the Remediation of Contaminated Aquifers , 2011 .
[40] Hang-sik Shin,et al. Mechanism study of nitrate reduction by nano zero valent iron. , 2011, Journal of hazardous materials.
[41] Siavash Iravani,et al. Green synthesis of metal nanoparticles using plants , 2011 .
[42] Rajender S Varma,et al. Synthesis, characterization and biocompatibility of "green" synthesized silver nanoparticles using tea polyphenols. , 2010, Nanoscale.
[43] N. Hayashi,et al. Analysis of acrylamide in green tea by gas chromatography-mass spectrometry. , 2006, Journal of agricultural and food chemistry.
[44] M. Friedman,et al. Distribution of catechins, theaflavins, caffeine, and theobromine in 77 teas consumed in the United States , 2006 .
[45] Andrew L. Waterhouse,et al. Determination of Total Phenolics , 2003 .
[46] Hong Yu,et al. Direct determination of free amino acids and sugars in green tea by anion-exchange chromatography with integrated pulsed amperometric detection. , 2002, Journal of chromatography. A.