Related Experiment Video
Updated: Jul 23, 2026

High-resolution Thermal Micro-imaging Using Europium Chelate Luminescent Coatings
Published on: April 16, 2017
Al4B2O9:Tb3+ Glass-Ceramic Scintillator for Antithermal Quenching X-ray Imaging in Deep-Earth Extreme Environments
Chengyu Qian1, Yujie Deng1, Qian Wang1
1School of Materials and Energy & School of Physical Science and Technology & Lanzhou Center for Theoretical Physics & Key Laboratory of Theoretical Physics of Gansu Province & Key Laboratory of Quantum Theory and Applications of MoE & Gansu Provincial Research Center for Basic Disciplines of Quantum Physics, Lanzhou University, Lanzhou 730000, China.
None:
In deep-earth environments, glass scintillators (GSs) can better withstand high temperature (>200 °C), high-humidity and other extreme conditions compared to crystal scintillators. However, due to their inherently high phonon energy and abundant defects, GSs are prone to thermal quenching (TQ), resulting in a low detection efficiency at elevated temperatures. To suppress TQ at high temperatures, an investigation into the mechanism of phonons and defects in the radioluminescence is conducted by introducing fluorides to create a low phonon environment and nanocrystallization to regulate a high proportion of shallow defect states. It is revealed that lower phonon energy effectively reduces energy dissipation during hot carrier relaxation, while shallow defect states facilitate carrier transport efficiency during migration to luminescent centers. Two strategies thereby collectively enhance radiative recombination. Based on the above, Al4B2O9:Tb3+ glass ceramic (GC) with a lower phonon energy and dominant shallow defect states (0.74 eV) was successfully synthesized. It has achieved excellent anti-TQ performance (188% at 400 °C), high spatial resolution (20 lp mm-1) and X-ray induced time-lapse imaging. This result has paved new avenues for GSs for applications in deep-earth environments.

