Particle morphology-dependent deformation mechanisms in sintered Cu structures
Journal article, 2026

Particle morphology is a critical structural variable in pressure-assisted sintering because it controls packing, pore topology, interparticle bonding and load transfer. Here, copper (Cu) was used as a model system to examine how monomodal spherical, bimodal spherical and flake-shaped particle assemblies, processed under identical conditions, form porous structures with distinct mechanical responses. Micro-pillar compression reveals low effective elastic moduli of 7.5-12.5 GPa and high yield strengths of 403-450 MPa. The deformation pathways are strongly morphology dependent. The monomodal structure accommodates strain through distributed pore collapse and particle deformation, leading to progressive densification hardening. The bimodal structure exhibits size-partitioned deformation, with large particles forming the main load-bearing backbone and smaller particles accommodating local rearrangement, embedding and shear compaction. The flake-shaped structure undergoes geometry-guided deformation, where extended face-to-face bonding enhances local load bearing, while inter-flake misalignment concentrates strain and promotes shear localization. Post-compression transmission electron microscopy (TEM) and transmission Kikuchi diffraction (TKD) analyses link these modes to pore collapse, neck deformation and grain-scale strain accommodation. TKD further gives average Geometrically Necessary Dislocations (GND) densities of 4.36 & times; 1014 m-2, 3.69 & times; 1014 m-2 and 4.11 & times; 1014 m-2 for the monomodal, bimodal and flake-shaped structures, respectively. Molecular dynamics (MD) simulations reproduce the corresponding strain-localization patterns and reveal morphology-controlled load-transfer pathways dominated by Shockley partial dislocations. These results establish particle morphology as a design parameter for tuning stiffness, strength and damage tolerance in sintered porous metals.

Micro-pillar compression test

Molecular dynamics

Particle morphology

Sintering

Transmission Kikuchi diffraction

Author

Tianxing Du

Delft University of Technology

Chenshan Gao

Southern University of Science and Technology

Olof Bäcke

Chalmers, Physics, Microstructure Physics

Lai Wei

Delft University of Technology

Huaiyu Ye

Southern University of Science and Technology

Guoqi Zhang

Delft University of Technology

Magnus Hörnqvist Colliander

Chalmers, Physics, Microstructure Physics

Leiming Du

Delft University of Technology

Materials Science & Engineering A: Structural Materials: Properties, Microstructure and Processing

0921-5093 (ISSN)

Vol. 973 150688

Subject Categories (SSIF 2025)

Other Materials Engineering

DOI

10.1016/j.msea.2026.150688

More information

Latest update

7/30/2026