El-Sharkawy Yasser H, Elbasuney Sherif
Head of Department of biomedical Engineering, Military Technical Collage, Kobry Elkoba, Cairo, Egypt.
Head of Nanotechnology Center, Military Technical College, Kobry El-Kobba, Cairo, Egypt.
Forensic Sci Int. 2017 Aug;277:215-222. doi: 10.1016/j.forsciint.2017.06.005. Epub 2017 Jun 15.
Laser photoacoustic spectroscopy (LPAS) is an attractive technology in terms of simplicity, ruggedness, and overall sensitivity; it detects the time dependent heat generated (thermo-elastic effect) in the target via interaction with pulsed optical radiation. This study reports on novel LPAS technique that offers instant and standoff detection capabilities of trace explosives. Over the current study, light is generated using pulsed Q-switched Nd:YAG laser; the generated photoacoustic response in stimulated explosive material offers signature values that depend on the optical, thermal, and acoustical properties. The generated acoustic waves were captured using piezoelectric transducer as well as novel customized optical sensor with remotely laser interferometer probe. A digital signal processing algorithm was employed to identify explosive material signatures via calculation of characteristic optical properties (absorption coefficient), sound velocity, and frequency response of the generated photoacoustic signal. Customized LPAS technique was employed for instantaneous trace detection of three main different high explosive materials including TNT, RDX, and HMX. The main outcome of this study is that the novel customized optical sensor signals were validated with traditional piezoelectric transducer. Furthermore, the customized optical sensor offered standoff detection capabilities (10cm), fast response, high sensitivity, and enhanced signal to noise ratio. This manuscript shaded the light on the instant detection of trace explosive materials from significant standoffs using novel customized LPAS technique.
激光光声光谱技术(LPAS)在简易性、坚固性和整体灵敏度方面是一项颇具吸引力的技术;它通过与脉冲光辐射相互作用来检测目标中随时间产生的热量(热弹性效应)。本研究报告了一种新型LPAS技术,该技术具备对痕量炸药的即时和远距离探测能力。在当前研究中,使用脉冲调Q Nd:YAG激光器产生光;在受激爆炸材料中产生的光声响应提供了取决于光学、热学和声学特性的特征值。使用压电换能器以及带有远程激光干涉仪探头的新型定制光学传感器来捕获产生的声波。采用数字信号处理算法,通过计算产生的光声信号的特征光学特性(吸收系数)、声速和频率响应来识别爆炸材料的特征。采用定制的LPAS技术对三种主要的不同高爆炸药材料(包括TNT、RDX和HMX)进行即时痕量检测。本研究的主要成果是,新型定制光学传感器的信号通过传统压电换能器得到了验证。此外,定制光学传感器具备远距离探测能力(10厘米)、快速响应、高灵敏度以及增强的信噪比。本论文揭示了利用新型定制LPAS技术从显著远距离对痕量爆炸材料进行即时检测的情况。