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Energetic Performance of Optically Activated Aluminum/Graphene Oxide Composites
Author(s) -
Yue Jiang,
Sili Deng,
Sungwook Hong,
Jiheng Zhao,
Sidi Huang,
ChiChin Wu,
Jennifer L. Gottfried,
Kenichi Nomura,
Ying Li,
Subodh Tiwari,
Rajiv K. Kalia,
Priya Vashishta,
Aiichiro Nakano,
Xiaolin Zheng
Publication year - 2018
Publication title -
acs nano
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.554
H-Index - 382
eISSN - 1936-086X
pISSN - 1936-0851
DOI - 10.1021/acsnano.8b06217
Subject(s) - materials science , ignition system , combustion , graphene , oxide , absorption (acoustics) , aluminium , composite material , laser ignition , nanotechnology , metallurgy , chemistry , physics , organic chemistry , thermodynamics
Optical ignition of solid energetic materials, which can rapidly release heat, gas, and thrust, is still challenging due to the limited light absorption and high ignition energy of typical energetic materials ( e.g., aluminum, Al). Here, we demonstrated that the optical ignition and combustion properties of micron-sized Al particles were greatly enhanced by adding only 20 wt % of graphene oxide (GO). These enhancements are attributed to the optically activated disproportionation and oxidation reactions of GO, which release heat to initiate the oxidization of Al by air and generate gaseous products to reduce the agglomeration of the composites and promote the pressure rise during combustion. More importantly, compared to conventional additives such as metal oxides nanoparticles ( e.g., WO 3 and Bi 2 O 3 ), GO has much lower density and therefore could improve energetic properties without sacrificing Al content. The results from Xe flash ignition and laser-based excitation experiments demonstrate that GO is an efficient additive to improve the energetic performance of micron-sized Al particles, enabling micron-sized Al to be ignited by optical activation and promoting the combustion of Al in air.

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