Mingyue Sun, Shuanglong Chen, Shi Su, Qiushi Wang, Xuejiao Wang
Accurate pressure probing in extreme environments demands robust sensors capable of withstanding harsh conditions. Herein, we report the synthesis of Eu2+-doped Al2O3 (Al2O3:Eu2+) nanorods via a plasma-assisted direct current arc method and demonstrate their utility as ultrasensitive optical pressure sensors. Comprehensive characterization-spanning XRD, EDS, and XPS-confirmed the phase purity and chemical composition, while TEM, HRTEM, and SAED analyses elucidated a uniform one-dimensional morphology (∼30 nm in length, ∼7 nm in diameter) coupled with high crystallinity. Optically, the nanorods exhibit intense blue emission centered at 460 nm under UV excitation, attributed to the 4f65d1→ 4f7 transition of Eu2+ ions. Crucially, in situ high-pressure photoluminescence spectroscopy revealed a pronounced pressure-dependent response up to 20 GPa. The emission maxima undergo a monotonic red shift with distinct pressure coefficients (1.01 and 2.30 nm/GPa for different fitting regimes), concomitant with a systematic broadening of the full width at half maximum (2.50 and 4.15 nm/GPa). This predictable evolution of spectral features facilitates a stable, linear calibration against pressure, enabling high-fidelity sensing. The resultant sensor combines high sensitivity, an extended dynamic range (>20 GPa), and remarkable thermal stability, positioning it as a powerful candidate for monitoring geodynamic processes, deep-sea exploration, and structural health in heavy-load engineering.