| Literature DB >> 27052451 |
Guoxiang Zhou1,2,3, Heng Zhang1,2,3, Shuping Xu1, Xuchun Gui4, Hongqiu Wei5, Jinsong Leng5, Nikhil Koratkar6, Jing Zhong2,3.
Abstract
In this work, a 3-D porous carbon nanotube sponge (CNTS) was embedded within a shape memory polymer (SMPs) matrix. We demonstrate complete infiltration and filling of the SMPs into the CNTS by capillary force without any damage to the CNTS structure. With only ~0.2 wt% carbon nanotube loading, the glass transition temperature is increased by ~20 °C, indicating strong interaction between CNTS and the SMPs matrix. Further, we find that the uniform distribution of the carbon nanotubes in the nanocomposite results in high electrical conductivity, and thus highly effective electricity triggering capability. The carbon nanotube sponge shape memory polymer (CNTS/SMPs) nanocomposite could be triggered within ~10 seconds by the application of ~10 volts. Results from finite element simulations showed good agreement with the experimental results, and indicated that for our system the interface thermal energy loss does not have a significant effect on the heating rate of the polymer matrix.Entities:
Year: 2016 PMID: 27052451 PMCID: PMC4823720 DOI: 10.1038/srep24148
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Fabrication of CNT sponge polymer composites (a) SEM images of CNTS (b,c) and CNTS/SMPs nanocomposite (d,e).
Figure 2(a) TG test of CNT sponge and CNT sponge polymer and (b) Glassy transition temperature of pure SMPs and CNTS/SMPs nanocomposite.
Figure 3Electrical actuation of CNTS/SMPs nanocomposite with the temperature distribution monitored.
Figure 4Shape recoverability of CNT sponge polymer under different voltages.
Figure 5Finite element simulation.
Geometric model of typical element (a) Distribution of temperature gradient at time 0 s (b), 1 s (c), 10 s (d) with interface thermal diffusion conductance of 8.3 × 10−5. Distribution of temperature gradient at time 0 s (e), 1 s (f) with interface thermal diffusion conductance of 8.3 × 10−8.
Figure 6Molecular Formula of E51 and D230.
Parameters used in FEM modeling of heat transfer.
| Parameters | Value | Unit |
|---|---|---|
| Voltage | 6 × 10−5 | V |
| Conductivity (CNT) | 1.29 | S/cm |
| Specific heat capacity (CNT) | 0.85 | J/(g·k) |
| Specific heat capacity (Polymer) | 0.50 | J/(g·k) |
| Inner diameter (CNT) | 20 | nm |
| Outer diameter (CNT) | 40 | nm |
| Separation distance of CNTs | 120 | nm |
| Film layer thermal resistance | 8.3 × 10−5 | |
| Thermal conductivity (CNT) | 1000 | W/(m·k) |
| Thermal conductivity (Polymer) | 0.2 | W/(m·k) |