TY - JOUR
T1 - Combustion performance of tannic acid-Fe(III) coated Al-10Li particles with improved chemical stability
AU - Zhao, Ziang
AU - Guo, Anqi
AU - Mao, Qian
AU - Wang, Deyi
AU - Zhou, Yintao
AU - Gao, Ning
AU - Tang, Yong
AU - Shi, Baolu
N1 - Publisher Copyright:
© 2026 The Combustion Institute.
PY - 2026
Y1 - 2026
N2 - Owing to their superior combustion performance, aluminum-lithium particles (Al-Li) are frequently considered as an alternative to aluminum as high-energy metallic fuels. However, the poor chemical stability of Al-10Li particles limits their wide applications. To address this, a core shell structure of tannic acid-Fe(III) (TA-Fe) is fabricated on Al-10Li particles (denoted as Al-10Li@TA-Fe) through a low-cost and one-step self-assembly method. The distribution and morphology of the surface coating are characterized by Fourier-transform infrared spectroscopy, energy-dispersive spectroscopy, and field emission scanning electron microscopy. The chemical stability of the Al-10Li@TA-Fe particles is assessed by mixing with ammonium perchlorate (AP). Results indicate that the TA-Fe coating significantly enhances the chemical stability of the Al-10Li particles by suppressing the reaction between Li and AP, which forms gas species of NH3. Furthermore, the combustion performance of both the coated and uncoated particles is studied based on a single-particle ignition and combustion platform by comparing the ignition delay time and the micro-explosion delay time. Results indicate that though the surface coating inhibits the heat transfer to the inner particle, it paradoxically facilitates the weakening of the surface oxide shell of Al-10Li through chemical reactions between TA-Fe and Al-10Li as revealed by FTIR and SEM analyses after heat treatment. Therefore, the synergistic effect of these two competing processes enables the Al-10Li@TA-Fe particles to simultaneously retain ignition and micro-explosion delay times comparable to those of uncoated Al-10Li particles at high temperatures. Novelty and significance statement Despite the superior combustion performance, Al-Li particles suffer from low chemical stability. Existing surface coating strategies, primarily developed for low-Li-content particles, often involve complex preparation or high cost. This work presents a low-cost, one-step coating strategy based on tannic acid-Fe(III) (TA-Fe) self-assembly for high-Li-content Al-10Li particles. Experimental results indicate that the coated Al-10Li particles exhibit significantly enhanced chemical stability and compatibility with ammonium perchlorate, even when mixed with the oxidizer of ammonium perchlorate, while maintaining comparable combustion performance to uncoated Al-10Li particles. The coating strategy developed in the present study is critical for the design, preparation, and optimization of advanced solid propellants.
AB - Owing to their superior combustion performance, aluminum-lithium particles (Al-Li) are frequently considered as an alternative to aluminum as high-energy metallic fuels. However, the poor chemical stability of Al-10Li particles limits their wide applications. To address this, a core shell structure of tannic acid-Fe(III) (TA-Fe) is fabricated on Al-10Li particles (denoted as Al-10Li@TA-Fe) through a low-cost and one-step self-assembly method. The distribution and morphology of the surface coating are characterized by Fourier-transform infrared spectroscopy, energy-dispersive spectroscopy, and field emission scanning electron microscopy. The chemical stability of the Al-10Li@TA-Fe particles is assessed by mixing with ammonium perchlorate (AP). Results indicate that the TA-Fe coating significantly enhances the chemical stability of the Al-10Li particles by suppressing the reaction between Li and AP, which forms gas species of NH3. Furthermore, the combustion performance of both the coated and uncoated particles is studied based on a single-particle ignition and combustion platform by comparing the ignition delay time and the micro-explosion delay time. Results indicate that though the surface coating inhibits the heat transfer to the inner particle, it paradoxically facilitates the weakening of the surface oxide shell of Al-10Li through chemical reactions between TA-Fe and Al-10Li as revealed by FTIR and SEM analyses after heat treatment. Therefore, the synergistic effect of these two competing processes enables the Al-10Li@TA-Fe particles to simultaneously retain ignition and micro-explosion delay times comparable to those of uncoated Al-10Li particles at high temperatures. Novelty and significance statement Despite the superior combustion performance, Al-Li particles suffer from low chemical stability. Existing surface coating strategies, primarily developed for low-Li-content particles, often involve complex preparation or high cost. This work presents a low-cost, one-step coating strategy based on tannic acid-Fe(III) (TA-Fe) self-assembly for high-Li-content Al-10Li particles. Experimental results indicate that the coated Al-10Li particles exhibit significantly enhanced chemical stability and compatibility with ammonium perchlorate, even when mixed with the oxidizer of ammonium perchlorate, while maintaining comparable combustion performance to uncoated Al-10Li particles. The coating strategy developed in the present study is critical for the design, preparation, and optimization of advanced solid propellants.
KW - Aluminum-lithium particles
KW - Chemical stability
KW - Combustion
KW - Micro-explosion
KW - Surface coating
UR - https://www.scopus.com/pages/publications/105044463605
U2 - 10.1016/j.proci.2026.106181
DO - 10.1016/j.proci.2026.106181
M3 - Article
AN - SCOPUS:105044463605
SN - 1540-7489
VL - 42
JO - Proceedings of the Combustion Institute
JF - Proceedings of the Combustion Institute
M1 - 106181
ER -