TY - JOUR
T1 - Highly Enhanced Energetic Kinetics and Reaction Mechanism Investigation of Hydrogenated Mg-Al Alloys
AU - Zhang, Shiyu
AU - Zhu, Yanli
AU - Zhao, Wanjun
AU - Liu, Zhigang
AU - Wei, Ziting
AU - Le, Wei
AU - Jiao, Qingjie
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2026/1/22
Y1 - 2026/1/22
N2 - Magnesium-based alloy fuels and magnesium hydride (MgH2) are promising candidates for fuels with high reactivity attracted numerous interests in energetic field. In this work, MgH2 with both high combustion heat and reactivity is introduced into Magnesium-Aluminum (Mg-Al) alloys through solid-state hydrogen storage technology, which achieves a well assembly of Mg, Al, and MgH2 on a micro scale. The hydrogenation of Mg-Al alloys is a surface-to-inside process, in which hydorgen (H2) is sequentially complexed with α-Mg, Al12Mg17, and Al3Mg2. Higher content of Mg and richer metallurgical interfaces in Mg-Al alloys can contribute to a higher hydrogenation degree. In addition, distinguished from Mg-Al alloys, the oxidization of hydrogenated Mg-Al alloys is triggered by the dehydrogenation and oxidation of MgH2 at ≈300 °C and 440 °C, promoting further oxidation of the internal Mg-Al intermetallic compound and advancing the oxidation temperature ≈10–20 °C. The multi-spectral combustion diagnostic technique further illustrates hydrogenated Mg-Al alloys show 200–400 °C higher combustion flame temperature than raw materials, which can be ascribed to the positive feedback combustion mechanism of “combustion-reduction-combustion” that promotes the energetic kinetics of Mg-Al alloy hydrides. Therefore, hydrogenated Mg-Al alloys in this work show tremendous potential as high-performance reactive fuels in energetic materials.
AB - Magnesium-based alloy fuels and magnesium hydride (MgH2) are promising candidates for fuels with high reactivity attracted numerous interests in energetic field. In this work, MgH2 with both high combustion heat and reactivity is introduced into Magnesium-Aluminum (Mg-Al) alloys through solid-state hydrogen storage technology, which achieves a well assembly of Mg, Al, and MgH2 on a micro scale. The hydrogenation of Mg-Al alloys is a surface-to-inside process, in which hydorgen (H2) is sequentially complexed with α-Mg, Al12Mg17, and Al3Mg2. Higher content of Mg and richer metallurgical interfaces in Mg-Al alloys can contribute to a higher hydrogenation degree. In addition, distinguished from Mg-Al alloys, the oxidization of hydrogenated Mg-Al alloys is triggered by the dehydrogenation and oxidation of MgH2 at ≈300 °C and 440 °C, promoting further oxidation of the internal Mg-Al intermetallic compound and advancing the oxidation temperature ≈10–20 °C. The multi-spectral combustion diagnostic technique further illustrates hydrogenated Mg-Al alloys show 200–400 °C higher combustion flame temperature than raw materials, which can be ascribed to the positive feedback combustion mechanism of “combustion-reduction-combustion” that promotes the energetic kinetics of Mg-Al alloy hydrides. Therefore, hydrogenated Mg-Al alloys in this work show tremendous potential as high-performance reactive fuels in energetic materials.
KW - combustion diagnostics
KW - energetic alloy fuel
KW - energy release mechanism
KW - evaluated reactivity
KW - hydrogenated Mg-Al alloys
UR - https://www.scopus.com/pages/publications/105013233097
U2 - 10.1002/adfm.202515686
DO - 10.1002/adfm.202515686
M3 - Article
AN - SCOPUS:105013233097
SN - 1616-301X
VL - 36
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 7
M1 - e15686
ER -