Atomic nonaffinity as structural indicator of protocol-dependent plasticity in amorphous solids

ORAL

Abstract

Structural heterogeneity of amorphous solids challenges the prediction of plastic events which is intimately connected to their mechanical behaviors. Here we report the atomic nonaffinity, as a structural indicator with intrinsic orientation, which is derived from the total nonaffine modulus based on a perturbation analysis of the potential energy landscape. We find that the atomic nonaffinity can efficiently characterize the locations of plastic events, which is comparable to other indicators. More importantly, it can accurately predict the protocol-dependent response of plastic events by quantitatively analyzing the relation between its softest direction and shear loading direction. These results shed light on the characterization and prediction of the mechanical response of amorphous solids.

*B.X. and P.F.G acknowledge financial support by the National Natural Science Foundation of China (NSFC, Grants No. 51571011), the MOST 973 program (No. 2015CB856800), and NSAF joint program (No. U1530401). M.L.F. acknowledges support provided by NSF Grant Awards No. 1408685/1409560. We acknowledge the computational support from the Beijing Computational Science Research Center.

Presenters

  • Bin Xu

    • Beijing Computational Science Research Center
    • Beijing computational science research center

Authors

  • Bin Xu

    • Beijing Computational Science Research Center
    • Beijing computational science research center
  • Michael Falk

    • Johns hopkins university
    • Johns Hopkins University
  • Sylvain Patinet

    • PMMH, ESPCI Paris
    • Physique de Mécanique des Milieux Hétérogènes laboratory
    • PMMH, CNRS UMR 7636, ESPCI Paris, PSL University, Sorbonne Université, Université de Paris, F-75005 Paris, France
    • espci Paris
  • Pengfei Guan

    • Beijing Computational Science Research Center
    • Beijing Computational Science Res Ctr
    • Beijing computational science research center