The numerical coefficients linearly relating the effects of stress (including pressure), temperature, and composition to shifts in the energies of the Cr-related fluorescence in alumina (AlO) are reviewed. The primary focus is the shift of the R and R "ruby" fluorescence lines under conditions typical for stress determination in polycrystalline AlO. No significant experimental difference in the R and R responses is observed for hydrostatic stress (or pressure) conditions (average shift coefficient of about 7.6 cm/GPa), changes in temperature (about 0.140 cm/K), or variations in composition (about 120 cm/mass fraction of Cr). There are significant differences in the R and R responses for nonhydrostatic stress conditions. In particular, for uniaxial stress along the and directions in the AlO crystal, the R piezospectroscopic tensor coefficients (about 3.0 cm/GPa and 1.6 GPa cm/GPa, respectively) differ considerably, whereas the R coefficients (about 2.6 cm/GPa and 2.3 GPa cm/GPa, respectively) do not. Measurements of the piezospectroscopic tensor coefficients are shown to have interlaboratory relative consistency of about 4 % extending over 30 years, and are consistent with the scalar high-pressure measurements. Measurements of the temperature coefficients are shown to have interlaboratory relative consistency less than 1 % extending over 60 years. Fluorescence-based measurements of stress in polycrystalline AlO, although requiring temperature adjustment, are shown to have a relative uncertainty of about 2.5 %.

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http://www.ncbi.nlm.nih.gov/pmc/articles/PMC7339716PMC
http://dx.doi.org/10.6028/jres.122.043DOI Listing

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