Effect of atmosphere on collinear double-pulse laser-induced breakdown spectroscopy

被引:0
作者
Andrew J. Effenberger
Jill R. Scott
机构
[1] Idaho National Laboratory (INL),
来源
Analytical and Bioanalytical Chemistry | 2011年 / 400卷
关键词
DP-LIBS; Helium; Argon; Air; Reduced pressure;
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摘要
Double-pulse laser-induced breakdown spectroscopy (DP-LIBS) has been shown to enhance LIBS spectra. Several researchers have reported significant increases in signal-to-noise and/or spectral intensity compared to single-pulse (SP) LIBS. In addition to DP-LIBS, atmospheric conditions can also increase sensitivity. Thus, in this study, a collinear DP-LIBS scheme was used along with manipulation of the atmospheric conditions. The DP-LIBS scheme consisted of an initial 45-mJ pulse at 1,064-nm fired into a sample contained in a controlled atmospheric/vacuum chamber. A second analytical 45-mJ pulse at 1,064-nm was then fired 0 to 200 μs after and along the same path of the first pulse. Ar, He, and air at pressures ranging from atmospheric pressure to 1 Torr are introduced during DP-LIBS and SP-LIBS experiments. For a brass sample, significant increases in the spectral intensities of Cu and Zn lines were observed in DP-LIBS under Ar compared to DP-LIBS in air. It was also found that Cu and Zn lines acquired with SP-LIBS in Ar are nearly as intense as DP-LIBS in air. While collinear DP-LIBS is effective for increasing the sensitivity for some reduced atmospheres (i.e., Ar and air at 630 to 100 Torr and He at 300 Torr), the enhanced spectral intensity ultimately dropped off as the pressure was reduced below 10 Torr for all atmospheric compositions in the experimental arrangement used in this study. At all pressures of air and Ar, the plasma temperature remained rather constant with increased inter-pulse delays; however, the plasma temperature was more variable for different He gas pressures and inter-pulse delays.
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页码:3217 / 3227
页数:10
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[11]  
Martin MZ(2008)Monitoring and assessment of toxic metals in Gulf War oil spill contaminated soil using laser-induced breakdown spectroscopy Environ Monit Assess 136 391-399
[12]  
Cheng MD(2004)Spectral fingerprints of bacterial strains by laser-induced breakdown spectroscopy J Phys Chem B 108 5477-5482
[13]  
Martin RC(2009)LIBS analysis of geomaterials: geochemical fingerprinting for the rapid analysis and discrimination of minerals Appl Geochem 24 1125-1141
[14]  
Pasquini C(2008)Laser induced breakdown spectroscopy as a tool for discrimination of glass for forensic applications Anal Bioanal Chem 391 1961-1968
[15]  
Cortez J(2005)Preliminary analysis of C and H in a “Sangiran” fossil using laser-induced plasma at reduced pressure J Appl Phys 98 093307-1-093307-8
[16]  
Silva LMC(2006)Femtosecond time-resolved laser-induced breakdown spectroscopy for detection and identification of bacteria: a comparison to the nanosecond regime J Appl Phys 99 084701-1-084701-9
[17]  
Gonzaga FB(2008)An optimization of parameters for application of a laser-induced breakdown spectroscopy microprobe for the analysis of works of art Appl Spectrosc 62 1242-1249
[18]  
Sneddon J(2010)Laser induced breakdown spectroscopy for elemental analysis in environmental, cultural heritage and space applications: a review of methods and results Sensors 10 7434-7468
[19]  
Lee YI(2008)ChemCam’s cost a drop in the Mars bucket Science 322 1464-1464
[20]  
Song K(1993)Determination of carbon content in molten steel using laser-induced breakdown spectroscopy Appl Spectrosc 47 606-608