4.7 Article

High Thermoelectric Power Generation by SWCNT/PPy Core Shell Nanocomposites

Journal

NANOMATERIALS
Volume 12, Issue 15, Pages -

Publisher

MDPI
DOI: 10.3390/nano12152582

Keywords

thermoelectric materials; conducting polymers; polypyrrole; single-wall carbon nanotubes; core shell nanocomposites

Funding

  1. King Abdullah City for Atomic and Renewable Energy, KSA

Ask authors/readers for more resources

Core shell nanocomposites based on SWCNT/PPy were fabricated and the optimum formula for maximum TE performance was determined. The core shell nanocomposite showed significantly enhanced TE power factor and figure of merit compared to pure PPy. This enhancement was attributed to the good interaction between PPy polymer chains and walls of the SWCNT.
Polypyrrole (PPy) is a conducting polymer with attractive thermoelectric (TE) properties. It is simple to fabricate and modify its morphology for enhanced electrical conductivity. However, such improvement is still limited to considerably enhancing TE performance. In this case, a single-wall carbon nanotube (SWCNT), which has ultrathin diameters and exhibits semi-metallic electrical conductivity, might be a proper candidate to be combined with PPy as a core shell one-dimensional (1D) nanocomposite for higher TE power generation. In this work, core shell nanocomposites based on SWCNT/PPy were fabricated. Various amounts of pyrrole (Py), which are monomer sources for PPy, were coated on SWCNT, along with methyl orange (MO) as a surfactant and ferric chloride as an initiator. The optimum value of Py for maximum TE performance was determined. The results showed that the SWCNT acted as a core template to direct the self-assembly of PPy and also to further enhance TE performance. The TE power factor, PF, and figure of merit, zT, values of the pure PPy were initially recorded as similar to 1 mu W/mK(2) and 0.0011, respectively. These values were greatly increased to 360 mu W/mK(2) and 0.09 for the optimized core shell nanocomposite sample. The TE power generation characteristics of the fabricated single-leg module of the optimized sample were also investigated and confirmed these findings. This enhancement was attributed to the uniform coating and good interaction between PPy polymer chains and walls of the SWCNT through pi-pi stacking. The significant enhancement in the TE performance of SWCNT/PPy nanocomposite is found to be superior compared to those reported in similar composites, which indicates that this nanocomposite is a suitable and scalable TE material for TE power generation.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.7
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

No Data Available
No Data Available