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arXiv · cond-mat/0207583

Fracture of glassy materials as detected by real-time Atomic Force Microscopy (AFM) experiments

Abstract

We have studied the low speed fracture regime for different glassy materials with variable but controlled length scales of heterogeneity in a carefully mastered surrounding atmosphere. By using optical and atomic force (AFM) microscopy techniques we tracked in real-time the crack tip propagation at the nanometer scale on a wide velocity range (1 mm/s and 0.1 nm/s and below). The influence of the heterogeneities on this velocity is presented and discussed. Our experiments revealed also -for the first time- that the crack advance proceeds through nucleation, growth and coalescence of nanometric damage cavities inside the amorphous phase, which generate large velocity fluctuations. The implications of the existence of such a nano-ductile fracture mode in glass are discussed.

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BibTeXRIS

F. Celarie, S. Prades, D. Bonamy, A. Dickele, L. Ferrero, E. Bouchaud, C. Guillot, C. Marliere. 2002-07-24. Fracture of glassy materials as detected by real-time Atomic Force Microscopy (AFM) experiments. https://doi.org/10.1016/s0169-4332(03)00029-1

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