dc.relation.references | Bhui, D.K., Misra, A., Synthesis of worm like silver nanoparticles in methyl cellulose polymeric matrix and its catalytic activity (2012) Carbohydrate Polymers, 89 (3), pp. 830-835;Mohapatra, B., Kuriakose, S., Mohapatra, S., Rapid green synthesis of silver nanoparticles and nanorods using Piper nigrum extract (2015) Journal of Alloys and Compounds, 637, pp. 119-126;Ahmed, S., Ahmad, M., Swami, B.L., Ikram, S., A review on plants extract mediated synthesis of silver nanoparticles for antimicrobial applications: A green expertise (2016) Journal of Advanced Research, 7 (1), pp. 17-28;Narayanan, K.B., Park, H.H., Antifungal activity of silver nanoparticles synthesized using turnip leaf extract (Brassica rapa L.) against wood rotting pathogens (2014) European Journal of Plant Pathology, 140 (2), pp. 185-192;Logeswari, P., Silambarasan, S., Abraham, J., Synthesis of silver nanoparticles using plants extract and analysis of their antimicrobial property (2015) Journal of Saudi Chemical Society, 19 (3), pp. 311-317;Shameli, K., Ahmad, M.B., Al-Mulla, E.A.J., Green biosynthesis of silver nanoparticles using Callicarpamaingayi stem bark extraction (2012) Molecules, 17 (7), pp. 8506-8517;Edison, T.N.J.I., Lee, Y.R., Sethuraman, M.G., Green synthesis of silver nanoparticles using Terminalia cuneata and its catalytic action in reduction of direct yellow-12 dye (2016) Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 161, pp. 122-129;Luna, C., Chávez, V.H.G., Barriga-Castro, E.D., Núñez, N.O., Mendoza-Reséndez, R., Biosynthesis of silver fine particles and particles decorated with nanoparticles using the extract of Illicium verum (star anise) seeds (2015) Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, 141, pp. 43-50;Edison, T.N.J.I., Sethuraman, M.G., Electrocatalytic reduction of benzyl chloride by green synthesized silver nanop articles using pod extract of Acacia nilotica (2013) ACS Sustainable Chemistry & Engineering, 1 (10), pp. 1326-1332;Chandran, S.P., Chaudhary, M., Pasricha, R., Ahmad, A., Sastry, M., Synthesis of gold nanotriangles and silver nanoparticles using Aloe vera plant extract (2006) Biotechnology Progress, 22 (2), pp. 577-583;Medda, S., Hajra, A., Dey, U., Bose, P., Mondal, N.K., Biosynthesis of silver nanoparticles fromAloe vera leaf extract and antifungal activity against Rhizopus sp. and Aspergillus sp (2015) Applied Nanoscience, 5 (7), pp. 875-880;Dinesh, D., Murugan, K., Madhiyazhagan, P., Mosquitocidal and antibacterial activity of green-synthesized silver nanoparticles from Aloe vera extracts: Towards an effective tool against the malaria vector Anopheles stephensi? (2015) Parasitology Research, 114 (4), pp. 1519-1529;Zhang, Y., Yang, D., Kong, Y., Wang, X., Pandoli, O., Gao, G., Synergetic antibacterial effects of silver Nanoparticles@Aloe vera prepared via a greenmethod (2010) Nano Biomedicine and Engineering, 2 (4), pp. 252-257;Dang, T.M.D., Le, T.T.T., Fribourg-Blanc, E., Dang, M.C., Synthesis and optical properties of copper nanoparticles prepared by a chemical reductionmethod (2011) Advances in Natural Sciences: Nanoscience and Nanotechnology, 2 (1);Nandal, U., Bhardwaj, R.L., Aloe vera: A valuable wonder plant for food, medicine and cosmetic use-A review (2012) International Journal of Pharmaceutical Sciences Review and Research, 13 (1), pp. 59-67;Theivasanthi, T., Alagar, M., Electrolytic synthesis and characterization of silver nanopowder (2012) Nano Biomedicine and Engineering, 4 (2), pp. 58-65;Wang, J.-X., Wen, L.-X., Wang, Z.-H., Chen, J.-F., Immobilization of silver on hollow silica nanospheres and nanotubes and their antibacterial effects (2006) Materials Chemistry and Physics, 96 (1), pp. 90-97;Marambio-Jones, C., Hoek, E.M.V., Areviewof the antibacterial effects of silver nanomaterials and potential implications for human health and the environment (2010) Journal of Nanoparticle Research, 12 (5), pp. 1531-1551;Shenashen, M.A., El-Safty, S.A., Elshehy, E.A., Synthesis, morphological control, and properties of silver nanoparticles in potential applications (2014) Particle & Particle Systems Characterization, 31 (3), pp. 293-316;Pradeep, T., Anshup, Noble metal nanoparticles for water purification: A critical review (2009) Thin Solid Films, 517 (24), pp. 6441-6478;Becaro, A.A., Puti, F.C., Panosso, A.R., Postharvest quality of fresh-cut carrots packaged in plastic films containing silver nanoparticles (2016) Food and Bioprocess Technology, 9 (4), pp. 637-649;Durán, N., Marcato, P.D., De Souza, G.I.H., Alves, O.L., Esposito, E., Antibacterial effect of silver nanoparticles produced by fungal process on textile fabrics and their effluent treatment (2007) Journal of Biomedical Nanotechnology, 3 (2), pp. 203-208;Zhang, S., Tang, Y., Vlahovic, B., A review on preparation and applications of silver-containing nanofibers (2016) Nanoscale Research Letters, 11 (1);Contescu, C.I., Putyera, K., (2008) Dekker Encyclopedia of Nanoscience and Nanotechnology, 6. , CRC Press, 2nd edition;Rajaram, K., Aiswarya, D.C., Sureshkumar, P., Green synthesis of silver nanoparticle using Tephrosia tinctoria and its antidiabetic activity (2015) Materials Letters, 138, pp. 251-254;Manimegalai, G., Shantha Kumar, S., Sharma, C., Pesticide mineralization in water using silver nanoparticles (2011) International Journal of Chemical Sciences, 9 (3), pp. 1463-1471;Bootharaju, M.S., Pradeep, T., Uptake of toxic metal ions from water by naked and monolayer protected silver nanoparticles: An x-ray photoelectron spectroscopic investigation (2010) The Journal of Physical Chemistry C, 114 (18), pp. 8328-8336;Sumesh, E., Bootharaju, M.S., Pradeep, T., A practical silver nanoparticle-based adsorbent for the removal of Hg2+ from water (2011) Journal of Hazardous Materials, 189 (1-2), pp. 450-457;Katok, K.V., Whitby, R.L.D., Fukuda, T., Hyperstoichiometric interaction between silver and mercury at the nanoscale (2012) Angewandte Chemie International Edition, 51 (11), pp. 2632-2635;Esmaielzadeh Kandjani, A., Sabri, Y.M., Mohammad-Taheri, M., Bansal, V., Bhargava, S.K., Detect, remove and reuse:Anew paradigm in sensing and removal of Hg (II) from wastewater via SERS-active ZnO/Ag nanoarrays (2015) Environmental Science & Technology, 49 (3), pp. 1578-1584;Gloria, E.C., Ederley, V., Gladis, M., Synthesis of silver nanoparticles (AgNPs) with antibacterial activity (2017) Journal of Physics: Conference Series, 850 (1);Rasband, W.S., (1997) Image J, , http://imagej.nih.gov/ij/, U.S. National Institutes of Health, Bethesda, Md, USA;Siegert, I., Banks, C., The effect of volatile fatty acid additions on the anaerobic digestion of cellulose and glucose in batch reactors (2005) Process Biochemistry, 40 (11), pp. 3412-3418;Purty, S., Saranathan, R., Prashanth, K., The expanding spectrum of human infections caused by Kocuria species: A case report and literature review (2013) Emerging Microbes & Infections, 2 (10);Kandi, V., Palange, P., Vaish, R., Emerging bacterial infection: Identification and clinical significance of Kocuria species (2016) Cureus, 8;Tsai, C.-Y., Su, S.-H., Cheng, Y.-H., Chou, Y.-L., Tsai, T.-H., Lieu, A.-S., Kocuria varians infection associated with brain abscess: A case report (2010) BMC Infectious Diseases, 10;Benites, J., Ayala, Z., Málaga, J., Reporte de un caso de infección urinaria por kocuria varians (2015) Revista de Investigación de la Universidad Norbert Wiener, (4), pp. 33-36;Sobhani, S., Pakdin-Parizi, Z., Palladium-DABCO complex supported on ?-Fe2O3 magnetic nanoparticles: A new catalyst for CC bond formation viaMizoroki-Heck cross-coupling reaction (2014) Applied Catalysis A: General, 479, pp. 112-120;(2010) National Recommended Water Quality Criteria for Priority Toxic Pollutants, Document EPA-Z-99-01, , U.S. Environmental Protection Agency | spa |