TY - JOUR
T1 - Effect of the nanofiller shape on the conductive network formation of polymer nanocomposites via a coarse-grained simulation
AU - Fanzhu, L. I.
AU - Zhang, Huan
AU - Tiantian, L. I.
AU - Jun, L. I.U.
AU - Gao, Yangyang
AU - Zhang, Liqun
N1 - Publisher Copyright:
© 2018 Rubber Division of the American Chemical Society. All rights reserved.
PY - 2018/10/1
Y1 - 2018/10/1
N2 - It is very important to improve the electrical conductivity of polymer nanocomposites, which can widen their application. The effect of the nanofiller shape on the relationship between the nanofiller microstructure and the conductive probability of the nanofiller filled polymer nanocomposites (PNCs) has been investigated in detail by employing a coarse-grained molecular dynamics simulation. Four kinds of nanofiller shapes are considered: rod filler, Y filler, X filler, and sphere filler. First, the mean square radius of gyration gradually decreases from rod filler, Y filler, X filler, to sphere filler, which reflects the highest aspect ratio for rod filler. Meanwhile, the dispersion state of the nanofiller is relatively uniform in the matrix. The conductive probability (denoted by the formation probability of the conductive network) is adopted to stand for the conductive property. The results show that the conductive probability gradually decreases from rod filler, Y filler, X filler, to sphere filler, which is attributed to their gradually decreased size. In summary, the nanofiller shape affects the electric conductive property of PNCs.
AB - It is very important to improve the electrical conductivity of polymer nanocomposites, which can widen their application. The effect of the nanofiller shape on the relationship between the nanofiller microstructure and the conductive probability of the nanofiller filled polymer nanocomposites (PNCs) has been investigated in detail by employing a coarse-grained molecular dynamics simulation. Four kinds of nanofiller shapes are considered: rod filler, Y filler, X filler, and sphere filler. First, the mean square radius of gyration gradually decreases from rod filler, Y filler, X filler, to sphere filler, which reflects the highest aspect ratio for rod filler. Meanwhile, the dispersion state of the nanofiller is relatively uniform in the matrix. The conductive probability (denoted by the formation probability of the conductive network) is adopted to stand for the conductive property. The results show that the conductive probability gradually decreases from rod filler, Y filler, X filler, to sphere filler, which is attributed to their gradually decreased size. In summary, the nanofiller shape affects the electric conductive property of PNCs.
UR - https://www.scopus.com/pages/publications/85061193804
U2 - 10.5254/rct.18.81546
DO - 10.5254/rct.18.81546
M3 - 文章
AN - SCOPUS:85061193804
SN - 0035-9475
VL - 91
SP - 757
EP - 766
JO - Rubber Chemistry and Technology
JF - Rubber Chemistry and Technology
IS - 4
ER -