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March 28, 2026Journal of the American Ceramic Society0 citationsOpen Access

Grain Boundary Fracture of a Magnesium Aluminate Spinel Bi‐Crystal: Microscale Experiments With Varying Mode Mixity

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YZYu Shrike ZhangSDShen J. DillonJLJohn Lambros

Key Points

  • The aim is to quantitatively measure the grain boundary fracture toughness of magnesium aluminate spinel and assess its mode mixity dependence.
  • Conducted microscale experiments using in situ imaging and loading in a transmission electron microscope.
  • Utilized bending experiments with notched bi‐crystal beams to assess grain boundary failure under varying loading configurations.
  • Applied finite element analysis to extract critical energy release rates and validate results with particle tracking measurements.
  • Grain boundary demonstrated lower fracture energy in opening‐dominated modes compared to the single crystal lattice.
  • Shear‐dominated modes showed significantly greater toughness in grain boundary fractures.

Abstract

ABSTRACT In this work, failure of a magnesium aluminate spinel (MgAl 2 O 4 ) is investigated at the microscale by concurrent in situ imaging and loading within a transmission electron microscope. The goal of the effort is to quantitively measure the grain boundary fracture toughness of a spinel bi‐crystal and study the toughness property disparity between the grain boundary and lattice (measured in an earlier effort). Additionally, the mode mixity dependence of the grain boundary fracture properties is measured as the applied loading configuration is varied. By placing a notch aligned with the grain boundary at the top or bottom edge of a bi‐crystal beam sample, bending experiments can generate grain boundary failure with different mode mixites. Critical energy release rates and mode mixity indicators for each sample were extracted through three‐dimensional finite element analysis (FEA), validated by comparison of particle tracking measurements with the FEA results. For opening‐dominated fracture, the grain boundary exhibited a lower fracture energy when compared to the single crystal lattice. Alternatively, shear‐dominated modes exhibit much larger toughness.

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Cite This Study

Zhang et al. (2026) studied this question.

synapsesocial.com/papers/69c7725e8bbfbc51511e2daehttps://doi.org/10.1111/jace.70690
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