Microstructural and mechanical anisotropy in pressure-assisted sintered copper nanoparticles

Journal Article (2025)
Author(s)

L. Du (TU Delft - Electronic Components, Technology and Materials)

K. Liu (TU Delft - Team Marcel Sluiter)

Dong Hu (TU Delft - Electronic Components, Technology and Materials)

Olof Bäcke (Chalmers University of Technology)

X. Hu (TU Delft - Electronic Components, Technology and Materials)

X. Ji (TU Delft - Electronic Components, Technology and Materials)

J. Fan (Fudan University)

R.H. Poelma (Nexperia B.V.)

Magnus Hörnqvist Colliander (Chalmers University of Technology)

G. Zhang (TU Delft - Electronic Components, Technology and Materials)

Research Group
Electronic Components, Technology and Materials
DOI related publication
https://doi.org/10.1016/j.actamat.2025.120772
More Info
expand_more
Publication Year
2025
Language
English
Research Group
Electronic Components, Technology and Materials
Volume number
287
Reuse Rights

Other than for strictly personal use, it is not permitted to download, forward or distribute the text or part of it, without the consent of the author(s) and/or copyright holder(s), unless the work is under an open content license such as Creative Commons.

Abstract

The mechanical strength of sintered nanoparticles (NPs) limits their application in advanced electronics packaging. In this study, we explore the anisotropy in the microstructure and mechanical properties of sintered copper (Cu) NPs by combining experimental techniques with molecular dynamics (MD) simulations. We establish a clear relationship between processing conditions, microstructural evolution, and resulting properties in pressure-assisted sintering of Cu NPs. Our findings reveal that pressure-assisted sintering induces significant anisotropy in the microstructure, as evidenced by variations in areal relative density and the orientation distribution of necks formed during sintering. Specifically, along the direction of applied pressure, the microstructure exhibits reduced variation in areal relative density and a higher prevalence of necks with favorable orientations. The resulting anisotropic mechanical properties, with significantly higher strength along the pressure direction compared to other directions, are demonstrated through micro-cantilever bending tests and tensile simulations. This anisotropy is further explained by the combined effects of strain localization (influenced by areal relative density) and the failure modes of necks (determined by their orientation relative to the loading direction). This work provides valuable insights into the analysis of sintered NPs microstructures and offers guidance for optimizing the sintering process.