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Updated: May 2, 2026

Processing of Bulk Nanocrystalline Metals at the US Army Research Laboratory
Published on: March 7, 2018
Multiphase Heterogeneous Nanolayers Enable Concurrent Strengthening and Ductility in Nanocrystalline Metal Films
Frederic Sansoz1, Malcolm R Pringle1, Jin-Su Oh2,3
1Department of Mechanical Engineering, The University of Vermont, Burlington, Vermont 05405, United States.
Abstract:
Ag is attractive for thin-film applications requiring high thermal and electrical conductivity, yet increasing strength and strain resistance without compromising the physical performance in pure Ag remains difficult. Here, experiments and atomistic simulations reveal a nanoscale strengthening mechanism in which ultrathin semicrystalline Ni-rich nanolayers are intercalated between thicker nanocrystalline Ag films, forming a stable multilayered structure composed of pure nanocrystalline Ag and multiphase Ni-Ag nanoalloy. This architecture yields a hardness of 2.6 GPa, a tensile strength of 677 MPa, and 6.6% plastic elongation, all surpassing previous Ag thin-film records while preserving high electrical conductivity. Chemical and structural heterogeneities confined within the intercalated nanolayers promote multiphase interface-mediated plasticity, which markedly enhances strain hardening and tensile ductility relative to conventional crystalline Ag-Ni nanolaminates at similar Ag thickness. This nanoscale strengthening mechanism provides a general strategy for designing nanocrystalline metallic films with exceptional mechanical and physical properties.

