AI Article Synopsis

  • Polymer composites made from polycarbonate (PC) and polyether ether ketone (PEEK), combined with single-walled carbon nanotubes (SWCNTs), were tested for their potential as thermoelectric materials, exhibiting positive Seebeck coefficients indicative of p-type behavior.
  • Three different ionic liquids were added to these composites to switch their conduction type from p-type to n-type, with only the phosphonium-based THTDPCl successfully achieving this change.
  • The study also included ultrafast laser spectroscopy to analyze the effects of ionic liquids on the composites, revealing the formation of biexcitons and a complex relationship between thermoelectric performance, conductivity, and exciton lifetimes.

Article Abstract

Polymer composites based on polycarbonate (PC) and polyether ether ketone (PEEK) filled with single-walled carbon nanotubes (SWCNTs, 0.5-2.0 wt %) were melt-mixed to investigate their suitability for thermoelectric applications. Both types of polymer composites exhibited positive Seebeck coefficients (), indicative for p-type thermoelectric materials. As an additive to improve the thermoelectric performance, three different ionic liquids (ILs), specifically THTDPCl, BMIMPF6, and OMIMCl, were added with the aim to change the thermoelectric conduction type of the composites from p-type to n-type. It was found that in both composite types, among the three ILs employed, only the phosphonium-based IL THTDPCl was able to activate the p- to n-type switching. Moreover, it is revealed that for the thermoelectric parameters and performance, the SWCNT:lL ratio plays a role. In the selected systems, -values between 61.3 μV/K (PEEK/0.75 wt % SWCNT) and -37.1 μV/K (PEEK/0.75 wt % SWCNT + 3 wt % THTDPCl) were reached. In order to shed light on the physical origins of the thermoelectric properties, the PC-based composites were studied using ultrafast laser time-resolved transient absorption spectroscopy (TAS). The TAS studies revealed that the introduction of ILs in the developed PC/CNT composites leads to the formation of biexcitons when compared to the IL-free composites. Moreover, no direct correlation between S and exciton lifetimes was found for the IL-containing composites. Instead, the exciton lifetime decreases while the conductivity seems to increase due to the availability of more free-charge carriers in the polymer matrix.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10391594PMC
http://dx.doi.org/10.1021/acsanm.3c01735DOI Listing

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