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Updated: Mar 29, 2026

In Situ Surface Temperature Measurement in a Conveyor Belt Furnace via Inline Infrared Thermography
Published on: May 30, 2020
All-inorganic lattice-contracted fabric image sensors for extreme-temperature radiography
Li Xu1, Peng Ran2, Wenqian Zhou1
1State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Textiles, Donghua University, Shanghai, China.
Abstract:
Conventional X‑ray sensing fails in extreme temperatures due to a fundamental trilemma: no material offers strong absorption, flexibility, and thermal stability simultaneously. Rigid inorganic scintillators exhibit thermal quenching above 450 K and cannot conform to curved surfaces, while flexible polymer-supported composites suffer from weak absorption and thermal degradation. We break this deadlock with an all-inorganic fabric scintillator (AIFS) enabled by a lattice contraction strategy that suppresses electron-phonon coupling and eliminates thermal quenching. AIFS maintains over 95% of its light output from 80 to 1373 K, tripling the operational limit of state-of-the-art X-ray sensors, while maintaining softness and achieving tenfold higher X‑ray absorption than polymer alternatives. We demonstrate real‑time monitoring of molten metals ( > 700 K) and superconducting magnets ( < 80 K), overcoming geometric mismatch, polymer degradation, and thermal drift. This work establishes a paradigm for shape‑adaptive imaging in extreme environments, from quantum devices to aerospace components.

