High Temperature Flow Behavior of Ultra-Strong Nanoporous Au assessed by Spherical Nanoindentation.

Nanomaterials (Basel)

Department Materials Physics, Montanuniversität Leoben, Jahnstraße 12, A-8700 Leoben, Austria.

Published: May 2018

Nanoporous metals have attracted attention in various research fields in the past years since their unique microstructures make them favorable for catalytic, sensory or microelectronic applications. Moreover, the refinement of the ligaments down to the nanoscale leads to an exceptionally high strength. To guarantee a smooth implementation of nanoporous metals into modern devices their thermo-mechanical behavior must be properly understood. Within this study the mechanical flow properties of nanoporous Au were investigated at elevated temperatures up to 300 °C. In contrast to the conventional synthesis by dealloying of AuAg precursors, the present foam was fabricated via severe plastic deformation of an AuFe nanocomposite and subsequent selective etching of iron, resulting in Au ligaments consisting of nanocrystalline grains, while remaining Fe impurities excessively stabilize the microstructure. A recently developed spherical nanoindentation protocol was used to extract the stress-strain curves of nanoporous Au. A tremendous increase of yield strength due to ligament and grain refinement was observed, which is largely maintained at high temperatures. Reviewing literature will evidence that the combined nanocrystalline and nanoporous structure leads to remarkable mechanical properties. Furthermore, comparison to a previous Berkovich nanoindentation study outlines the conformity of different indentation techniques.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6027362PMC
http://dx.doi.org/10.3390/nano8060366DOI Listing

Publication Analysis

Top Keywords

spherical nanoindentation
8
nanoporous metals
8
nanoporous
6
high temperature
4
temperature flow
4
flow behavior
4
behavior ultra-strong
4
ultra-strong nanoporous
4
nanoporous assessed
4
assessed spherical
4

Similar Publications

Instable Microdeformation and Strain Recovery in Amorphous LiPON Thin Layer.

ACS Omega

December 2024

HUN-REN Research Centre for Natural Sciences, Institute of Materials and Environmental Chemistry, Magyar Tudósok Körútja 2, 1117 Budapest, Hungary.

Lithium phosphorus oxynitride (LiPON) is a crucial electrolyte for all-solid-state thin-film batteries due to its sufficient ionic conductivity. Understanding the mechanical behavior of LiPON films is crucial for further technological development. Previous studies noted unexpected ductility and strain recovery in amorphous LiPON during sharp-ended tip indentations revealing pile-up formation and densification as the main deformation mechanisms.

View Article and Find Full Text PDF

The mechanical competence and suturing ability of collagen-based membranes are paramount in guided bone regeneration (GBR) therapy, to ensure damage-free implantation, fixation and space maintenance. However, contact with the biological medium can induce swelling of collagen molecules, yielding risks of membrane sinking into the bone defect, early loss of barrier function, and irreversibly compromised clinical outcomes. To address these challenges, this study investigates the effect of the crosslinked network architecture on both mechanical and suture-holding properties of a new atelocollagen (AC) membrane.

View Article and Find Full Text PDF

Given the paramount importance of agricultural products in global health and food security, and the increasing consumer demand, understanding the mechanical behavior of these materials under various conditions is necessary yet challenging. Due to their heterogeneous and non-uniform nature, determining their mechanical behavior is complex. This study employs atomic force microscopy (AFM) to determine the modulus of elasticity of limequat fruit at the microscopic scale and compares it with macroscopic methods.

View Article and Find Full Text PDF

Heterogeneous element doping in amorphous carbon films can reduce residual stresses and improve plastic deformation. Nevertheless, the effects of dopant content and size on the metastable transition mechanism between sp-C and sp-C atoms during the deformation process are unclear and difficult to be in situ observed and researched, experimentally. In this work, the mechanical properties and the structural evolution during the nanoindentation of amorphous CoCrFeNi sphere-doped carbon heterostructured films with different radii were simulated.

View Article and Find Full Text PDF

Micro/Nanomechanical Characterization of ScAlMgO Single Crystal by Instrumented Indentation and Scratch Methods.

Materials (Basel)

August 2024

Fujian Provincial Key Laboratory of Terahertz Functional Devices and Intelligent Sensing, School of Mechanical Engineering and Automation, Fuzhou University, Fuzhou 350108, China.

Article Synopsis
  • ScAlMgO (SCAM) is a material used as a substrate for GaN in power devices, but its brittle nature makes obtaining a high-quality surface through polishing difficult.
  • Mechanical properties of SCAM single crystals were assessed through nanoindentation and microscratch tests, revealing an elastic modulus of 226 GPa and indentation hardness of 12.1 GPa.
  • The study identified significant damage patterns during scratching and proposed a method to calculate the fracture toughness of SCAM, which was determined to be 1.12 MPa·m, highlighting the challenges of working with cleaved materials.
View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!