Molecular aspect ratio effect on axial thermal transport in solution-spun carbon nanotube fibers

Y Yingru Song (Department of Mechanical Engineering, William Marsh Rice University 1 , Houston, Texas 77005,) M Michelle Durán-Chaves (The Carbon Hub, William Marsh Rice University 2 , Houston Texas 77005,) I Ivan R. Siqueira O Oliver S. Dewey (The Carbon Hub, William Marsh Rice University 2 , Houston Texas 77005,) O Ognyan Stefanov (Department of Mechanical Engineering, William Marsh Rice University 1 , Houston, Texas 77005,) N Natsumi Komatsu (California Institute for Quantitative Biosciences, University of California) J Junichiro Kono M Matteo Pasquali G Geoff Wehmeyer (Department of Mechanical Engineering, William Marsh Rice University 1 , Houston, Texas 77005,)

Abstract

Neat, densely packed, and highly aligned carbon nanotube fibers (CNTFs) have appealing room-temperature axial thermal conductivity (k) and thermal diffusivity (α) for applications in lightweight heat spreading, flexible thermal connections, and thermoelectric active cooling. Although CNTFs are regularly produced from different input carbon nanotubes (CNTs), prior work has not quantified how the CNT molecular aspect ratio r (i.e., molecular length-to-diameter ratio) influences k and α in well-aligned, packed CNTFs. Here, we perform self-heated steady-state and three-omega thermal measurements at room temperature on CNTF suspended in vacuum. Our results show that k increases from 150 to 380W/mK for viscosity-averaged molecular aspect ratios increasing from r=960 to 5600 and nanotube diameters of ∼2 nm, which we attribute to the effects of thermal resistances between CNT bundles. CNTFs made with varying volume fraction ϕ of constituent high-r and low-r CNT have properties that fall within or below the typical macroscopic rule-of-mixtures bounds. The thermal diffusivity α scales with k, leading to a sample-averaged volumetric heat capacity of 1.5±0.3MJ/m3K. This work's findings that fibers made from longer CNT have larger k and α at room temperature motivate further investigation into thermal transport in solution-spun CNTF.

Article Details

Volume / Issue Vol. 137, Issue 10
Published March 14, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (9)

Y

Yingru Song

Department of Mechanical Engineering, William Marsh Rice University 1 , Houston, Texas 77005,

M

Michelle Durán-Chaves

The Carbon Hub, William Marsh Rice University 2 , Houston Texas 77005,

I

Ivan R. Siqueira

O

Oliver S. Dewey

The Carbon Hub, William Marsh Rice University 2 , Houston Texas 77005,

O

Ognyan Stefanov

Department of Mechanical Engineering, William Marsh Rice University 1 , Houston, Texas 77005,

N

Natsumi Komatsu

California Institute for Quantitative Biosciences, University of California

J

Junichiro Kono

M

Matteo Pasquali

G

Geoff Wehmeyer

Department of Mechanical Engineering, William Marsh Rice University 1 , Houston, Texas 77005,