Published October 2013 | Version Supplemental Material
Journal Article Open

Local Relative Density Modulates Failure and Strength in Vertically Aligned Carbon Nanotubes

  • 1. ROR icon California Institute of Technology
  • 2. ROR icon Los Alamos National Laboratory
  • 3. ROR icon University of North Texas
  • 4. ROR icon University of Michigan–Ann Arbor
  • 5. ROR icon Massachusetts Institute of Technology

Abstract

Micromechanical experiments, image analysis, and theoretical modeling revealed that local failure events and compressive stresses of vertically aligned carbon nanotubes (VACNTs) were uniquely linked to relative density gradients. Edge detection analysis of systematically obtained scanning electron micrographs was used to quantify a microstructural figure-of-merit related to relative local density along VACNT heights. Sequential bottom-to-top buckling and hardening in stress–strain response were observed in samples with smaller relative density at the bottom. When density gradient was insubstantial or reversed, bottom regions always buckled last, and a flat stress plateau was obtained. These findings were consistent with predictions of a 2D material model based on a viscoplastic solid with plastic non-normality and a hardening–softening–hardening plastic flow relation. The hardening slope in compression generated by the model was directly related to the stiffness gradient along the sample height, and hence to the local relative density. These results demonstrate that a microstructural figure-of-merit, the effective relative density, can be used to quantify and predict the mechanical response.

Additional Information

© 2013 American Chemical Society. Received for review May 29, 2013 and accepted September 3, 2013. Published online September 03, 2013. The authors acknowledge financial support from the Institute for Collaborative Biotechnologies (ICB) through Grant W911NF-09-0001 from the U.S. Army Research Office. The content of the information does not necessarily reflect the position or the policy of the Government, and no official endorsement should be inferred. S.P. gratefully acknowledges support from the W.M. Keck Institute for Space Studies Postdoctoral Fellowship program for this work.

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Additional details

Identifiers

Eprint ID
42838
Resolver ID
CaltechAUTHORS:20131204-145203712

Funding

Army Research Office (ARO)
W911NF-09-0001
Keck Institute for Space Studies (KISS)

Dates

Created
2013-12-05
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Updated
2021-11-10
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