Song Zhao-Qiang, Qin Yuan, Liu Yifei, Nie Hongqi, Yan Qi-Long
National Key Laboratory of Solid Rocket Propulsion, Northwestern Polytechnical University, Xi'an 710072, China.
Langmuir. 2024 Jul 18. doi: 10.1021/acs.langmuir.4c01700.
Direct initiation of secondary explosives by a semiconductor laser is highly demanded, but it is challenging to exclude the use of sensitive primers. Most laser-sensitive energetic materials are usually mechanically sensitive. In order to reduce the mechanical sensitivity (MS) of 2,4,6,8,10,12-hexanitro-2,4,6,8,10,12-hexaazaisowurtzitane (CL-20) while improving laser absorbance in the near-infrared band, spherical CL-20 composites (SCCs) embedded with nano aluminum (Al) powder and graphene-based catalyst (GO-CHZ-Co) were prepared by a spray drying method. These SCCs have been characterized comprehensively in terms of their morphologies, particle size distribution, laser absorbance, thermal decomposition behaviors, MS, and laser ignition properties. Results show that the maximum critical impact energy of SCCs was 3.8 J, which is 2.8 J higher than that of pristine ε-CL-20. The critical friction load was increased by at most 108 N compared to pristine CL-20. The absorbance has also been significantly increased up to almost 70% in the wavelength between 400 and 1400 nm, where the peak absorption is located in the region of 800-900 nm. In addition, the initial decomposition temperature () of SCCs is lower than that of pure CL-20, especially in the presence of GO-CHZ-Co. The apparent activation energy () for the decomposition of SCCs was largely dependent on the particle size of Al. Preliminary ignition tests indicate that the SCCs can be ignited successfully by a small-power laser.
人们迫切需要用半导体激光直接引发二次炸药,但要避免使用敏感引物具有挑战性。大多数对激光敏感的含能材料通常对机械敏感。为了降低2,4,6,8,10,12 - 六硝基-2,4,6,8,10,12 - 六氮杂异伍兹烷(CL - 20)的机械感度,同时提高其在近红外波段的激光吸收率,采用喷雾干燥法制备了包覆纳米铝(Al)粉和石墨烯基催化剂(GO - CHZ - Co)的球形CL - 20复合材料(SCCs)。对这些SCCs的形貌、粒度分布、激光吸收率、热分解行为、机械感度和激光点火性能进行了全面表征。结果表明,SCCs的最大临界撞击能量为3.8 J,比原始ε - CL - 20高2.8 J。与原始CL - 20相比,临界摩擦负荷最多增加了108 N。在400至1400 nm波长范围内,吸收率也显著提高,最高可达近70%,其中峰值吸收位于800 - 900 nm区域。此外,SCCs的初始分解温度()低于纯CL - 20,特别是在存在GO - CHZ - Co的情况下。SCCs分解的表观活化能()在很大程度上取决于Al的粒径。初步点火试验表明,SCCs能用小功率激光成功点燃。