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Laser Induced Breakdown Spectroscopy Based on Single Beam Splitting and Geometric Configuration for Effective Signal Enhancement

机译:基于单光束分裂和几何构型的激光诱导击穿光谱技术可有效增强信号

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摘要

A new laser induced breakdown spectroscopy (LIBS) based on single-beam-splitting (SBS) and proper optical geometric configuration has been initially explored in this work for effective signal enhancement. In order to improve the interaction efficiency of laser energy with the ablated material, a laser beam operated in pulse mode was divided into two streams to ablate/excite the target sample in different directions instead of the conventional one beam excitation in single pulse LIBS (SP-LIBS). In spatial configuration, the laser beam geometry plays an important role in the emission signal enhancement. Thus, an adjustable geometric configuration with variable incident angle between the two splitted laser beams was constructed for achieving maximum signal enhancement. With the optimized angles of 60° and 70° for Al and Cu atomic emission lines at 396.15 nm and 324.75 nm respectively, about 5.6- and 4.8-folds signal enhancements were achieved for aluminum alloy and copper alloy samples compared to SP-LIBS. Furthermore, the temporal analysis, in which the intensity of atomic lines in SP-LIBS decayed at least ten times faster than the SBS-LIBS, proved that the energy coupling efficiency of SBS-LIBS was significantly higher than that of SP-LIBS.
机译:在这项工作中,为了有效地增强信号,最初探索了一种基于单光束分裂(SBS)和适当的光学几何结构的新型激光诱导击穿光谱(LIBS)。为了提高激光能量与烧蚀材料的相互作用效率,将以脉冲模式操作的激光束分为两束,以在不同方向烧蚀/激发目标样品,而不是在单脉冲LIBS(SP -LIBS)。在空间配置中,激光束几何形状在发射信号增强中起重要作用。因此,构造了在两个分开的激光束之间具有可变入射角的可调几何构造,以实现最大的信号增强。铝和铜原子发射线的最佳角度分别为396.15 nm和324.75 nm,分别为60°和70°,与SP-LIBS相比,铝合金和铜合金样品的信号增强分别约为5.6倍和4.8倍。此外,时间分析表明,SP-LIBS中原子线的强度衰减至少比SBS-LIBS快十倍,证明SBS-LIBS的能量耦合效率明显高于SP-LIBS。

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