Title of article :
Surface modification of sol–gel derived nano zinc oxide (ZnO) and the study of its effect on the properties of styrene–butadiene rubber (SBR) nanocomposites
Author/Authors :
Roy, Kumarjyoti Department of Chemistry - University of Kalyani - Nadia - West Bengal, India , Najib Alam, Md Department of Chemistry - University of Kalyani - Nadia - West Bengal, India , Kumar Mandal, Swapan Department of Chemistry - University of Kalyani - Nadia - West Bengal, India , Chandra Debnath, Subhas Department of Chemistry - University of Kalyani - Nadia - West Bengal, India
Abstract :
Very recently, nano zinc oxide (ZnO) has been
successfully introduced as a cure activator for the reduction
of ZnO level in the rubber industry. The purpose of the
present work is to examine the appropriateness of surfacemodified
nano ZnO in the vulcanization of styrene–butadiene
rubber (SBR). In the experimental part, the surface of
nano ZnO is modified by stearic acid and bis[3-(triethoxysilyl)
propyl]tetrasulfide (Si-69). Si-69-treated nano
ZnO causes considerable enhancement in many properties
such as maximum rheometric torque, modulus, tensile
strength, elongation at break, cross-linking degree of SBR
nanocomposite in comparison to conventional ZnO and
unmodified or stearic acid-treated nano ZnO. Thermogravimetric
analysis (TGA) reveals that Si-69-treated nano
ZnO imposes better thermal stability than untreated or
stearic acid-treated nano ZnO in the SBR vulcanizates.
Morphological study indicates uniform dispersion of Si-69-
treated nano ZnO within the SBR matrix and this fact
accounts for better mechanical and thermal properties of
SBR nanocomposite in the presence of Si-69-modified
nano ZnO. This study concludes that Si-69-modified nano
ZnO can be effectively applied as cure activator in place of
nano ZnO to reduce the ZnO level in SBR compounds.
This will lead to both economic advantages and environmental
safety in the rubber industry.
Keywords :
Nanocomposites , Cure activator , Surface modification , Mechanical properties , Thermal stability , Morphology
Journal title :
Astroparticle Physics