Author/Authors :
Sundeep, Dola School of Nanotechnology - Center for Nano Science and Technology - Institute of Science and Technology (IST) - Jawaharlal Nehru Technological University, India , Vijaya Kumar, T. Department of Mechanical Engineering - K L University , Vaddeswaram, Guntur, India , Rao, P. S. Subba School of Nanotechnology - Center for Nano Science and Technology - Institute of Science and Technology (IST) - Jawaharlal Nehru Technological University, India , Ravikumar, R. V. S. S. N. Department of Physics - University College of Sciences - Acharya Nagarjuna University, Guntur, Andhra Pradesh, India , Gopala Krishna, A. School of Nanotechnology - Center for Nano Science and Technology - Institute of Science and Technology (IST) - Jawaharlal Nehru Technological University, India
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/cm2 compared to conventional GIC and GIC
reinforced with silver microparticle as 11.7 and 9.5 kg/
cm2. 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.
Keywords :
Silver nanoparticles , Ionomer cement , Vickers hardness , Monsanto hardness , Antibacterial activity