Crack-configuration analysis of metal conductive track embedded in stretchable elastomer

4Citations
Citations of this article
14Readers
Mendeley users who have this article in their library.

Abstract

This paper reports the analysis of the crack configuration of a stretched metal conductive track that is embedded in a stretchable elastomer. The factor determining the crack configurations is analyzed by modeling as well as experiments. The modeling analysis indicates that the crack configuration is determined by the ratio of the elongation stiffness of the track and elastomer, and is classified into two types: multiple-crack growth and single-crack growth. When the track stiffness is considerably lower than the elastomer stiffness, multiple-crack growth type occurs; in the opposite case, single-crack growth type occurs. Hence, to verify the modeling analysis, metal conductive tracks with different thicknesses are fabricated, and the cracks are studied with respect to the crack width, number of cracks, and crack propagation speed. In this study, two conventional metal-track shapes are studied: straight-shaped tracks with track thickness of 0.04-1.17 μm, and wave-shaped tracks with track thickness of 2-10 μm. For straight-shaped tracks, multiple-crack growth type occurred, when the track thickness was 0.04 μm, and the crack configuration gradually changed to a single crack, with the increase in the track thickness. For wave-shaped tracks with track thickness of 2-10 μm, only single-crack growth type occurred; however, the crack propagation speed decreased and the maximum stretchability of the track increased, with the increase in the track thickness.

Figures

  • Figure 1. Schematic of the crack-configuration modeling analysis. (a) Cracked metal track embedded in a stretchable elastomer; (b) simplified stress-strain curve of a metal track layer; (c) simplified stress strain-curve of a stretchable elastomer; (d) schematic of a multiple-crack growth type; and, (e) schematic of a single-crack growth type.
  • Table 1. Relationship between the calculated values of the ratio of the elongation stiffness and the crack configurations, in previous studies and this study.
  • Table 1. Cont.
  • Figure 2. Fabrication of a straight-shaped copper track embedded in PU. (a) Thermal deposition of a copper layer on a polytetrafluoroethylene (PTFE) sheet; (b) Cutting of the PTFE sheet; (c) Transfer of the copper track onto a polyurethane (PU) tape; (d) Lamination of another PU tape; and, (e) Optical images of the fabricated copper track in PU.
  • Figure 3. Fabrication of a wave-shaped copper track embedded in PU. (a) Lamination of a copper foil on a PU sheet; (b) Spin-coating of a photoresist on the copper foil; (c) Development and patterning of the photoresist; (d) Wet-etching of the copper foil; (e) Removal of the photoresist; (f) Lamination of a PU tape on the structured copper; and, (g) Optical images of a wave-shaped copper track in PU.
  • Figure 4. Images of the experimental setup.
  • Figure 5. Cont.
  • Figure 5. Series of optical images of a cracked copper track in PU with track thicknesses of (a–c) 0.04 µm; (d–f) 0.53 µm; and, (g–i) 0.10 µm.

References Powered by Scopus

Materials and mechanics for stretchable electronics

4348Citations
N/AReaders
Get full text

Epidermal electronics

4183Citations
N/AReaders
Get full text

25th anniversary article: The evolution of electronic skin (E-Skin): A brief history, design considerations, and recent progress

2154Citations
N/AReaders
Get full text

Cited by Powered by Scopus

Soft bio‐integrated multifunctional devices using an intrinsically stretchable conducting nanomembrane

9Citations
N/AReaders
Get full text

Electrical characterization of a double-layered conductive pattern with different crack configurations for durable E-textiles

6Citations
N/AReaders
Get full text

Self-Healing Metal Interconnect for Flexible Electronic Device

1Citations
N/AReaders
Get full text

Register to see more suggestions

Mendeley helps you to discover research relevant for your work.

Already have an account?

Cite

CITATION STYLE

APA

Koshi, T., & Iwase, E. (2018). Crack-configuration analysis of metal conductive track embedded in stretchable elastomer. Micromachines, 9(3). https://doi.org/10.3390/mi9030130

Readers over time

‘18‘19‘20‘21‘22‘2302468

Readers' Seniority

Tooltip

PhD / Post grad / Masters / Doc 4

80%

Professor / Associate Prof. 1

20%

Readers' Discipline

Tooltip

Engineering 7

78%

Materials Science 2

22%

Save time finding and organizing research with Mendeley

Sign up for free
0