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      Green synthesis and characterization of Ag nanoparticles from Mangifera indica leaves for dental restoration and antibacterial applications

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          Abstract

          Green synthesis has gained a wide recognition as clean synthesis technique in the recent years. In the present investigation, silver nanoparticles were prepared by a novel green synthesis technique using Mangifera indica (Mango leaves) and found to be successfully used in dental applications. The prepared samples were spectroscopically characterized by XRD, PSA, SEM with EDS, and UV–Vis spectroscopy. The crystalline size and lattice strain were analyzed from the XRD data which were counter-verified by W–H plots and particle size analyzer. The XRD peaks revealed that average crystalline size of the as-synthesized Ag nanoparticles was of 32.4 nm with face-centered cubic structure. This was counter-verified by particle size analyzer and Williamson–Hall plots and found to be 31.7 and 33.21 nm in the former and latter, and the crystalline size of Ag NPs could be concluded as 32 ± 2 nm. The morphological structure of the prepared sample was studied through SEM images and the chemical composition was analyzed by the EDS data. The band energy was calculated as 393 nm from UV–Vis, which confirmed the synthesized sample as Ag nanoparticles. To improve the mechanical bonding and hardness of the dentally used glass ionomer cement (GIC), the synthesized silver nanoparticles were incorporated into GIC in 2% weight ratio. The morphology of the prepared specimens was studied using optical microscope images. Vickers microhardness and Monsanto hardness tests were performed on GIC, GIC reinforced with microsilver particles and GIC reinforced with nanosilver particles and the latter derived a promising results. The results of the Monsanto tests confirmed the increase in hardness of the GIC reinforced with AgNps as 14.2 kg/cm 2 compared to conventional GIC and GIC reinforced with silver microparticle as 11.7 and 9.5 kg/cm 2. Similarly the Vickers hardness results exhibited the enhanced hardness of GIC-reinforced AgNps as 82 VHN compared to GIC as 54 and GIC-reinforced silver microparticles as 61 VHN. The antibacterial activity of AgNPs was tested by a well-diffusion method on Escherichia coli and Staphylococcus aureus bacteria, and the obtained results exhibited a promising antibacterial activity of the as-synthesized nanoparticles.

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          Plasma resonance enhancement of Raman scattering by pyridine adsorbed on silver or gold sol particles of size comparable to the excitation wavelength

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            Bactericidal paper impregnated with silver nanoparticles for point-of-use water treatment.

            There is an urgent need for cheap point-of-use methods to purify drinking water. We describe a method to deactivate pathogenic bacteria by percolation through a paper sheet containing silver nanoparticles. The silver nanoparticles are deposited by the in situ reduction of silver nitrate on the cellulose fibers of an absorbent blotting paper sheet. The aim is to achieve inactivation of bacteria during percolation through the sheet, rather than removal of bacteria from the effluent by filtration. The silver-nanoparticle containing (AgNP) papers were tested for performance in the laboratory with respect to bacteria inactivation and silver leaching as suspensions of bacteria percolated through the paper. The AgNP sheets exhibited antibacterial properties toward suspensions of Escherichia coli and Enterococcus faecalis, with log reduction values in the effluent of over log 6 and log 3, respectively. The silver loss from the AgNP sheets was minimal, with values under 0.1 ppm (the current US EPA and WHO limit for silver in drinking water). These results show promise that percolation of bacterially contaminated water through paper embedded with silver nanoparticles could be an effective emergency water treatment.
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              Mangifera indica leaf-assisted biosynthesis of well-dispersed silver nanoparticles.

              The use of various parts of plants for the synthesis of nanoparticles is considered as a green technology as it does not involve any harmful chemicals. The present study reports a facile and rapid biosynthesis of well-dispersed silver nanoparticles. The method developed is environmentally friendly and allows the reduction to be accelerated by changing the temperature and pH of the reaction mixture consisting of aqueous AgNO3 and Mangifera Indica leaf extract. At a pH of 8, the colloid consists of well-dispersed triangular, hexagonal and nearly spherical nanoparticles having size ∼20 nm. The UV-vis spectrum of silver nanoparticles gave surface plasmon resonance (SPR) at 439 nm. The synthesized nanocrystals were characterized using transmission electron microscopy (TEM), X-ray diffraction (XRD) and Fourier transform infrared (FTIR) spectroscopy. Water soluble organics present in the leaf are responsible for the reduction of silver ions. This green method provides faster synthesis comparable to chemical methods and can be used in areas such as cosmetics, foods and medical applications.
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                Author and article information

                Contributors
                +91 97012 46017 , +91 97055 04492 , sundeepdola@gmail.com , dolasundeep@gmail.com
                +91 8008652555 , +91 9848628468 , dr.a.gopalakrishna@gmail.com
                Journal
                Prog Biomater
                Prog Biomater
                Progress in Biomaterials
                Springer Berlin Heidelberg (Berlin/Heidelberg )
                2194-0509
                2194-0517
                3 May 2017
                3 May 2017
                May 2017
                : 6
                : 57-66
                Affiliations
                [1 ]ISNI 0000 0004 1775 4749, GRID grid.411829.7, School of Nanotechnology, Center for Nano Science and Technology, Institute of Science and Technology (IST), , Jawaharlal Nehru Technological University, ; Kakinada, Andhra Pradesh 533 003 India
                [2 ]ISNI 0000 0000 9211 2181, GRID grid.411114.0, Department of Physics, University College of Sciences, , Acharya Nagarjuna University, ; Guntur, Andhra Pradesh India
                [3 ]ISNI 0000 0004 1766 2457, GRID grid.449504.8, Department of Mechanical Engineering, , K L University, ; Green Fields, Vaddeswaram, Guntur, Andhra Pradesh 522 520 India
                Author information
                http://orcid.org/0000-0002-3585-6664
                Article
                67
                10.1007/s40204-017-0067-9
                5433963
                28470622
                9e7ca024-982b-4520-9b67-4c7506e31492
                © The Author(s) 2017

                Open AccessThis article is distributed under the terms of the Creative Commons Attribution 4.0 International License ( http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made.

                History
                : 29 November 2016
                : 26 April 2017
                Funding
                Funded by: FundRef http://dx.doi.org/10.13039/501100001427, All India Council for Technical Education;
                Award ID: 13IS1D9608
                Award Recipient :
                Categories
                Original Research
                Custom metadata
                © The Author(s) 2017

                silver nanoparticles,ionomer cement,vickers hardness,monsanto hardness,antibacterial activity

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