Chem. J. Chinese Universities ›› 2016, Vol. 37 ›› Issue (6): 1216.doi: 10.7503/cjcu20150939
• Polymer Chemistry • Previous Articles Next Articles
ZHANG Boyuan, GUO Zhaoxia*(), YU Jian*(
)
Received:
2015-12-09
Online:
2016-06-10
Published:
2016-05-10
Contact:
GUO Zhaoxia,YU Jian
E-mail:guozx@mail.tsinghua.edu.cn;yujian03@mail.tsinghua.edu.cn
CLC Number:
TrendMD:
ZHANG Boyuan, GUO Zhaoxia, YU Jian. Effects of Glass Fiber on Electrical Conductivities of Multiwalled Carbon Nanotube-filled Polymer/Thermoplastic Polyurethane Blends[J]. Chem. J. Chinese Universities, 2016, 37(6): 1216.
Fig.1 Effects of GF on electrical resistivities of PP/TPU/MWCNT(A), PMMA/TPU/MWCNT(B) and PLA/TPU/MWCNT(C) composites(A) a. PP/TPU/4%MWCNT, b. PP/TPU/4%MWCNT/20%GF; (B) a. PMMA/TPU/1.5%MWCNT,b. PMMA/TPU/1.5%MWCNT/20%GF; (C) a. PLA/TPU/1%MWCNT, b. PLA/TPU/1%MWCNT/20%GF.
Sample | Contact angle/(°) | γ/(mN·m-1) | γd/(mN·m-1) | γp/(mN·m-1) | |
---|---|---|---|---|---|
Water | Diiodomethane | ||||
PP | 97.3 | 49.5 | 38.1 | 37.9 | 0.2 |
PMMA | 66.6 | 26.5 | 46.2 | 36.1 | 10.1 |
PLA | 74.3 | 39.8 | 40.0 | 32.5 | 7.5 |
TPU | 102.4 | 73.4 | 21.5 | 20.4 | 1.1 |
Table 1 Contact angles in water and diiodomethane and surface tensions of all polymers at 20 ℃
Sample | Contact angle/(°) | γ/(mN·m-1) | γd/(mN·m-1) | γp/(mN·m-1) | |
---|---|---|---|---|---|
Water | Diiodomethane | ||||
PP | 97.3 | 49.5 | 38.1 | 37.9 | 0.2 |
PMMA | 66.6 | 26.5 | 46.2 | 36.1 | 10.1 |
PLA | 74.3 | 39.8 | 40.0 | 32.5 | 7.5 |
TPU | 102.4 | 73.4 | 21.5 | 20.4 | 1.1 |
Sample | Temperature/℃ | γ/(mN·m-1) | γd/(mN·m-1) | γp/(mN·m-1) |
---|---|---|---|---|
PP | 200 | 26.5 | 26.4 | 0.1 |
PMMA | 200 | 32.3 | 25.2 | 7.1 |
PLA | 190 | 28.5 | 23.2 | 5.3 |
TPU | 200 | 15.0 | 14.2 | 0.8 |
TPU | 190 | 15.3 | 14.5 | 0.8 |
MWCNTs[ | 45.3 | 18.4 | 26.9 | |
MWCNTs[ | 27.8 | 17.6 | 10.2 |
Table 2 Surface tensions of all polymers at processing temperature
Sample | Temperature/℃ | γ/(mN·m-1) | γd/(mN·m-1) | γp/(mN·m-1) |
---|---|---|---|---|
PP | 200 | 26.5 | 26.4 | 0.1 |
PMMA | 200 | 32.3 | 25.2 | 7.1 |
PLA | 190 | 28.5 | 23.2 | 5.3 |
TPU | 200 | 15.0 | 14.2 | 0.8 |
TPU | 190 | 15.3 | 14.5 | 0.8 |
MWCNTs[ | 45.3 | 18.4 | 26.9 | |
MWCNTs[ | 27.8 | 17.6 | 10.2 |
System | ωa | Predicted location of MWCNTs | System | ωa | Predicted location of MWCNTs |
---|---|---|---|---|---|
PP/TPU/MWCNT[ | 0.7 | Interface | PMMA/TPU/MWCNT[ | -0.8 | Interface |
PP/TPU/MWCNT[ | 0.8 | Interface | PLA/TPU/MWCNT[ | -1.9 | PLA phase |
PMMA/TPU/MWCNT[ | -1.5 | PMMA phase | PLA/TPU/MWCNT[ | -1.1 | PLA phase |
Table 3 Wetting coefficients and predicted locations of MWCNTs
System | ωa | Predicted location of MWCNTs | System | ωa | Predicted location of MWCNTs |
---|---|---|---|---|---|
PP/TPU/MWCNT[ | 0.7 | Interface | PMMA/TPU/MWCNT[ | -0.8 | Interface |
PP/TPU/MWCNT[ | 0.8 | Interface | PLA/TPU/MWCNT[ | -1.9 | PLA phase |
PMMA/TPU/MWCNT[ | -1.5 | PMMA phase | PLA/TPU/MWCNT[ | -1.1 | PLA phase |
Fig.2 FESEM images of PP/4%MWCNT(A), PP/10%TPU/4%MWCNT after etching(B), PMMA/1.5%MWCNT(C), PMMA/10%TPU/1.5%MWCNT(D), PLA/1%MWCNT(E) and PLA/10%TPU/1%MWCNT(F) composites
Fig.3 FESEM images of PP/4%MWCNT/20%GF(A), PP/10%TPU/4%MWCNT/20%GF(B) and PP/20%TPU/4%MWCNT/20%GF(C) compositesTop inset of (B): PP matrix; bottom inset of (B): GF surface.
Fig.7 Effects of MWCNTs contents on electrical resistivities of polymer/10%TPU/MWCNT/20%GF compositesa. PP/10%TPU/MWCNT/20%GF;b. PMMA/10%TPU/MWCNT/20%GF;c. PLA/10%TPU/MWCNT/20%GF.
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