TY - JOUR
T1 - The glass transition and thermoelastic behavior of epoxy-based nanocomposites
T2 - A molecular dynamics study
AU - Choi, Joonmyung
AU - Yu, Suyoung
AU - Yang, Seunghwa
AU - Cho, Maenghyo
PY - 2011/10/13
Y1 - 2011/10/13
N2 - In this study, the glass transition and thermoelastic properties of cross-linked epoxy-based nanocomposites and their filler-size dependency are investigated through molecular dynamics simulations. In order to verify the size effect of nanoparticles, five different unit cells with different-sized silicon carbide (SiC) nanoparticles are considered under the same volume fraction. By considering a wide range of temperatures in isobaric ensemble simulations, the glass transition temperature is obtained from the specific volume-temperature relationship from the cooling-down simulation. In addition, the coefficient of thermal expansion (CTE) and the elastic stiffness of the nanocomposites at each temperature are predicted and compared with one another. As a result, the glass transition and thermoelastic properties of pure epoxy are found to be improved by embedding the SiC nanoparticles. Especially regarding the CTE and elastic moduli of nanocomposites, the particle-size dependency is clearly observed below and above the glass transition temperature.
AB - In this study, the glass transition and thermoelastic properties of cross-linked epoxy-based nanocomposites and their filler-size dependency are investigated through molecular dynamics simulations. In order to verify the size effect of nanoparticles, five different unit cells with different-sized silicon carbide (SiC) nanoparticles are considered under the same volume fraction. By considering a wide range of temperatures in isobaric ensemble simulations, the glass transition temperature is obtained from the specific volume-temperature relationship from the cooling-down simulation. In addition, the coefficient of thermal expansion (CTE) and the elastic stiffness of the nanocomposites at each temperature are predicted and compared with one another. As a result, the glass transition and thermoelastic properties of pure epoxy are found to be improved by embedding the SiC nanoparticles. Especially regarding the CTE and elastic moduli of nanocomposites, the particle-size dependency is clearly observed below and above the glass transition temperature.
KW - Glass transition
KW - Molecular dynamics simulation
KW - Thermoelastic properties
UR - https://www.scopus.com/pages/publications/80053923995
U2 - 10.1016/j.polymer.2011.09.019
DO - 10.1016/j.polymer.2011.09.019
M3 - Article
AN - SCOPUS:80053923995
SN - 0032-3861
VL - 52
SP - 5197
EP - 5203
JO - Polymer
JF - Polymer
IS - 22
ER -