Published September 20, 2017 | Version v1
Journal article

Low temperature solid-state wetting and formation of nanowelds in silver nanowires

  • 1. Innovation Center, University of Belgrade, Faculty of Technology and Metallurgy, Karnegijeva 4, 11120 Belgrade (Serbia)
  • 2. Max Planck Institute for the Science of Light, Günther-Scharowsky-Str. 1, D-91058 Erlangen (Germany)
  • 3. National Center for Electron Microscopy, Molecular Foundry, Lawrence Berkeley National Laboratory, Berkeley, CA 94720 (United States)
  • 4. Center for Nanoanalysis and Electron Microscopy, Friedrich-Alexander University Erlangen-Nürnberg, Cauerstrasse 6, D-91058 Erlangen (Germany)
  • 5. Faculty of Technology and Metallurgy, University of Belgrade, Karnegijeva 4, 11120 Belgrade (Serbia)

Description

This article focuses on the microscopic mechanism of thermally induced nanoweld formation between silver nanowires (AgNWs) which is a key process for improving electrical conductivity in NW networks employed for transparent electrodes. Focused ion beam sectioning and transmission electron microscopy were applied in order to elucidate the atomic structure of a welded NW including measurement of the wetting contact angle and characterization of defect structure with atomic accuracy, which provides fundamental information on the welding mechanism. Crystal lattice strain, obtained by direct evaluation of atomic column displacements in high resolution scanning transmission electron microscopy images, was shown to be non-uniform among the five twin segments of the AgNW pentagonal structure. It was found that the pentagonal cross-sectional morphology of AgNWs has a dominant effect on the formation of nanowelds by controlling initial wetting as well as diffusion of Ag atoms between the NWs. Due to complete solid-state wetting, at an angle of ∼4.8°, the welding process starts with homoepitaxial nucleation of an initial Ag layer on (100) surface facets, considered to have an infinitely large radius of curvature. However, the strong driving force for this process due to the Gibbs–Thomson effect, requires the NW contact to occur through the corner of the pentagonal cross-section of the second NW providing a small radius of curvature. After the initial layer is formed, the welded zone continues to grow and extends out epitaxially to the neighboring twin segments. (paper)

Availability note (English)

Available from http://dx.doi.org/10.1088/1361-6528/aa7eb8

Additional details

Identifiers

Publishing Information

Journal Title
Nanotechnology (Print)
Journal Volume
28
Journal Issue
38
Journal Page Range
[9 p.]
ISSN
0957-4484