PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
September 10, 2025ACS Nano3 citations

Deformation and Failure of Supported Five-Fold Twinned Silver Nanowires under Tensile, Compressive, and Cyclic Loading

View Full Paper
MMMarco MoningerLVLilian VoglPSP. Schweizer

Key Points

  • Silver nanowires demonstrate varying deformation behavior based on the type of polymer substrate used during mechanical testing.
  • Tensile testing revealed that wires on PET fracture into multiple segments, while those on PDMS usually fracture once, highlighting adhesion effects.
  • Cyclic compressive tests show that newly formed grain boundaries may serve as potential fracture sites under fatigue conditions.
  • Correlative microscopy techniques provided detailed insights into the mechanical response and failure mechanisms of individual nanowires.

Abstract

Silver nanowire (AgNW) networks have emerged as one of the most promising materials for flexible transparent conductive electrodes. These wires offer excellent electrical, optical, and mechanical properties and can be applied using low-cost printing techniques with the potential for upscaling. To elucidate the mechanical properties of nanowire networks for use in flexible electronics, it is essential to first characterize the behavior of individual wires adhered to the polymer surface under mechanical loading of the polymer. This study investigates the mechanical response of isolated nanowires during uniaxial in situ tensile testing of the polymer using correlative microscopy, which combines the advantages of light and electron microscopy. By changing the orientation of the nanowires with respect to the tensile straining axis of the polymer, the nanowires experience either tensile (for parallel orientation) or compressive forces (for perpendicular orientation) according to the polymer's elastic-plastic Poisson's ratio, which links lateral contraction of the polymer to tensile strain. Aligned and isolated AgNWs were applied to flat surfaces of two polymers, PET and PDMS, which serve as model systems to investigate the effect of the substrate on the mechanical response of the nanowires. We observe a strong influence of the polymer type on the wire deformation behavior and fracture, which we attribute to the different adhesion strength of the wires on PET and PDMS. While the wires on PET undergo multiple fractures, breaking into segments of roughly equal length under tensile loading, those on PDMS typically fracture only once, accompanied by early sliding of the wire on the substrate. Compression tests revealed localized plastic deformation by nanowire kinking with the formation of new grain boundaries for both polymer substrates. Electron microscopy studies revealed different deformation configurations depending on the amount of load applied. In addition, cyclic compressive tests provided insight into the fatigue behavior of the wires. Here, newly formed grain boundaries acted as potential fracture sites, whereas the purely elastic deformation remained fully reversible up to 1000 cycles.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Moninger et al. (2025) studied this question.

synapsesocial.com/papers/68c1ce5d54b1d3bfb60f524fhttps://doi.org/10.1021/acsnano.5c05537
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Highly Efficient and Bendable Organic Solar Cells with Solution‐Processed Silver Nanowire Electrodes2013 · 331 citations
  2. 2Elasticity and yield strength of pentagonal silver nanowires: In situ bending tests2013 · 60 citations
  3. 3Understanding and Controlling the Evolution of Nanomorphology and Crystallinity of Organic Bulk‐Heterojunction Blends with Solvent Vapor Annealing2022 · 19 citations
  4. 4Ultrathin Flexible Transparent Composite Electrode via Semi-embedding Silver Nanowires in a Colorless Polyimide for High-Performance Ultraflexible Organic Solar Cells2022 · 82 citations
  5. 5General consideration of the radiation chemistry of polymers1995 · 94 citations