Wenkai Zhao, Ruite Liu, Longfei Zhang, Yiguang Jiang, Long Zhang
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Synthesis and characterization of divalent ion-modified ZnF2–AlF3-based glass for mid-infrared fiber applications
In this study, a novel five-component fluoride glass system based on ZnF2 and AlF3 was designed, and its glass-forming region was identified. Low field strength elements such as Ca, Pb, and Mg were introduced to enhance glass-forming ability, in accordance with the “confusion principle.” The thermal, optical, mechanical, and chemical properties of the modified glasses were systematically evaluated. Among the modifying ions, Ca²⁺ proved most effective, significantly enhancing thermal stability. The optimized composition, 27ZnF2–30AlF3–12SrF2–13BaF2–10YF3–8CaF2 (mol%), demonstrated excellent comprehensive properties, including high thermal stability (∆T = 108 °C), broad transmission spectra (~7.6 µm), low phonon energy (605 cm–1), and excellent chemical stability. A large-size, transparent Ca-modified glass sample was successfully fabricated. This new fluoride glass system presents a viable alternative for the development of optical fibers for high-power laser transmission.
期刊介绍:
The Journal of Alloys and Compounds is intended to serve as an international medium for the publication of work on solid materials comprising compounds as well as alloys. Its great strength lies in the diversity of discipline which it encompasses, drawing together results from materials science, solid-state chemistry and physics.