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Energetic Films Realized by Encapsulating Copper Azide in Silicon-Based Carbon Nanotube Arrays with Higher Electrostatic Safety

机译:通过将叠氮化铜封装在具有更高静电安全性的硅基碳纳米管阵列中实现的高能薄膜

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摘要

Since copper azide (Cu(N ) ) has high electrostatic sensitivity and is difficult to be practically applied, silicon-based Cu(N ) @carbon nanotubes (CNTs) composite energetic films with higher electrostatic safety were fabricated, which can be compatible with micro-electro mechanical systems (MEMS). First, a silicon-based porous alumina film was prepared by a modified two-step anodic oxidation method. Next, CNTs were grown in pores of the silicon-based porous alumina film by chemical vapor deposition. Then, copper nanoparticles were deposited in CNTs by electrochemical deposition and oxidized to Cu(N ) by gaseous hydrogen azide. The morphology and composition of the prepared silicon-based Cu(N ) @CNTs energetic films were characterized by field emission scanning electron microscopy (FESEM), transmission electron microscopy (TEM) and X-ray diffraction (XRD), respectively. The electrostatic sensitivity of the composite energetic film was tested by the Bruceton method. The thermal decomposition kinetics of the composite energetic films were studied by differential scanning calorimetry (DSC). The results show that the exothermic peak of the silicon-based Cu(N ) @CNTs composite energetic film is at the temperature of 210.95 °C, its electrostatic sensitivity is significantly less than that of Cu(N ) and its 50% ignition energy is about 4.0 mJ. The energetic film shows good electric explosion characteristics and is successfully ignited by laser.
机译:由于叠氮化铜(Cu(N))具有较高的静电敏感性,难以实际应用,因此制备了具有较高静电安全性的硅基Cu(N)@碳纳米管(CNTs)复合高能薄膜,该薄膜可与微米级兼容。 -机电系统(MEMS)。首先,通过改进的两步阳极氧化法制备硅基多孔氧化铝膜。接下来,通过化学气相沉积使CNT在硅基多孔氧化铝膜的孔中生长。然后,通过电化学沉积将铜纳米颗粒沉积在CNT中,并通过气态叠氮化氢氧化为Cu(N)。分别通过场发射扫描电子显微镜(FESEM),透射电子显微镜(TEM)和X射线衍射(XRD)表征了制备的硅基Cu(N)@CNTs高能薄膜的形貌和组成。通过Bruceton方法测试复合高能膜的静电敏感性。通过差示扫描量热法(DSC)研究了复合高能薄膜的热分解动力学。结果表明,硅基Cu(N)@CNTs复合高能薄膜的放热峰温度为210.95℃,其静电敏感度明显小于Cu(N),其50%着火能为约4.0 mJ。高能膜显示出良好的电爆炸特性,并被激光成功点燃。

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