Jiyoung Kim, Lorenzo Guio, Takahiko Kawai, Shunsuke Murayama, Tomonaga Okabe, Haruki Meguro, Jinghang Dai, Samuel Kielar, Jinha Kwon, Christine K. Luscombe, Zhiting Tian
Conjugated polymers are promising materials for flexible electronics, with poly(3-hexylthiophene) (P3HT) standing out for its ease of solution-based processing. However, the influence of the molecular arrangement on thermal transport remains less understood, particularly with respect to thin-film thickness. Here, we investigate the in-plane thermal conductivity of P3HT thin films with thicknesses ranging from 12 to 136 nm using transient thermal grating (TTG) spectroscopy, a precise noncontact optical technique. A pronounced thickness dependence is observed, with the highest thermal conductivity of 0.88 W/m·K in the thinnest film and the lowest value of 0.25 W/m·K in the thickest film. The enhancement in thermal conductivity in thinner films is attributed to denser lamellar packing in face-on configurations, an increased contribution of face-on domains, and spatial confinement-induced improvements in short-range ordering within the amorphous regions of thinner films. These findings demonstrate that the film thickness is an effective parameter for tuning in-plane thermal conductivity in P3HT thin films.