TY - JOUR
T1 - Discussion on degree of entanglement, chain confinement, and reinforcement efficiency factor of PTT/PE blend nanocomposite embedded with MWCNTs
AU - Madathinal Kunjappan, Aswathi
AU - Reghunadhan, Arunima
AU - Ramachandran, Ajitha A.
AU - Mathew, Lovely
AU - Padmanabhan, Moothetty
AU - Laroze, David
AU - Thomas, Sabu
N1 - Publisher Copyright:
© 2021 John Wiley & Sons Ltd
PY - 2021/8
Y1 - 2021/8
N2 - The current report addresses the rheological and viscoelastic properties of poly (trimethylene terephthalate)/polyethylene blend system containing multiwall carbon nanotubes (MWCNTs). The alliance of MWCNT into the blend system raises both the modulus and the dynamic viscosity. The thermophysical properties of blend nanocomposites exhibit a lower threshold percolation particularly in comparison to nanocomposites PTT/MWCNT. The dynamic mechanical properties of nanocomposites were also enhanced by adding MWCNT and the higher storage modulus value of nanocomposites explains their reasonable load—bearing capacity by inserting MWCNT. Reinforcing efficiency factor, degree of entanglement density, coefficient of effectiveness, and volume of the constrained region of blend nanocomposites are studied and 90PTT/10PE/3CNT has shown maximum entanglement density value and reinforcement efficiency factor. Different theoretical models were used to predict the storage modulus of blend nanocomposites and among them, the Takayanagi model established fine concurrence with the experimental results.
AB - The current report addresses the rheological and viscoelastic properties of poly (trimethylene terephthalate)/polyethylene blend system containing multiwall carbon nanotubes (MWCNTs). The alliance of MWCNT into the blend system raises both the modulus and the dynamic viscosity. The thermophysical properties of blend nanocomposites exhibit a lower threshold percolation particularly in comparison to nanocomposites PTT/MWCNT. The dynamic mechanical properties of nanocomposites were also enhanced by adding MWCNT and the higher storage modulus value of nanocomposites explains their reasonable load—bearing capacity by inserting MWCNT. Reinforcing efficiency factor, degree of entanglement density, coefficient of effectiveness, and volume of the constrained region of blend nanocomposites are studied and 90PTT/10PE/3CNT has shown maximum entanglement density value and reinforcement efficiency factor. Different theoretical models were used to predict the storage modulus of blend nanocomposites and among them, the Takayanagi model established fine concurrence with the experimental results.
KW - constrained region
KW - entanglement
KW - modeling
KW - nanocomposite
KW - reinforcement
UR - https://www.scopus.com/pages/publications/85105160921
U2 - 10.1002/pat.5303
DO - 10.1002/pat.5303
M3 - Article
AN - SCOPUS:85105160921
SN - 1042-7147
VL - 32
SP - 2916
EP - 2928
JO - Polymers for Advanced Technologies
JF - Polymers for Advanced Technologies
IS - 8
ER -