Acta Photonica Sinica, Volume. 47, Issue 8, 847010(2018)
Quantitative Analysis of Aluminium Alloy with Remote Laser-induced Breakdown Spectroscopy
[1] [1] BAUDELET M, YU Jin, BOSSU M, et al. Discrimination of microbiological samples using femtosecond laser-induced breakdown spectroscopy[J]. Applied Physics Letters 2006, 89: 163903.
[2] [2] MOHAMED Y W T. Improved LIBS limit of detection of Be, Mg, Si, Mn, Fe and Cu in aluminum alloy samples using a portable Echelle spectrometer with ICCD camera[J]. Optics & Laser Technology, 2007 40(1): 30-38.
[3] [3] DE GIACOMO A, DELL′ AGLIO M, COLAO F, et al. Double-pulse LIBS in bulk water and on submerged bronze samples[J]. Applied Surface Science, 2005, 247: 157-162.
[4] [4] PALANCO S, BAENA J M, LASERNA J J. Open-path laser-induced plasma spectrometry for remote analytical measurements on solid surfaces[J]. Spectrochimica Acta Part B: Atomic Spectroscopy, 2002, 57: 591-599
[5] [5] WALLIN S, PETTERSSON A, STMARK H, et al. Laser-based standoff detection of explosives: a critical review[J]. Analytical and Bioanalytical Chemistry, 2009, 395: 259-274.
[7] [7] FRANK C, DE JR L, JENNIFER L, et al. Current status of standoff LIBS security applications at the united states army research laboratory[J]. Spectroscopy, 2009, 24(6): 29-36.
[8] [8] WILLIAMS R M, GROTZINGER J P, DIEREICH W E, et al. Martian fluvial conglomerates at Gale crater[J]. Science. 2013, 340(6136): 1068-1072.
[10] [10] WHITEHOUSE A I, YOUNG J, EVANS CP, et al. Remote compositional analysis of spent-fuel residues using laser-induced breakdown spectroscopy[C]. Waste Management ‘03, Tucson, AZ, February 23-27.2003.
[11] [11] GONG Y, CHOI D, HAN B Y, et al. Remote quantitative analysis of cerium through a shielding window by stand-off laser-induced breakdown spectroscopy[J]. Journal of Nuclear Materials, 2014, 453: 8-15.
[12] [12] ZHANG Da-cheng, MA Xin-wen, WANG Shu-long, et al. Influence of ambient gas on laser-induced breakdown spectroscopy of uranium metal[J]. Plasma Science and Technology, 2015, 17(11): 971-974.
[13] [13] ROHWETTER P, YU J, MJEAN G, et al. Remote LIBS with ultrashort pulses: characteristics in picosecond and femtosecond regimes[J]. Journal of Analytical Atomic Spectrometry, 2004, 19: 437-444.
[14] [14] LVAREZ-TRUJILLO L A, LAZIC V, MOROS J,et al. Standoff monitoring of aqueous aerosols using nanosecond laser-induced breakdown spectroscopy: droplet size and matrix effects[J]. Applied Optics, 2017, 56(13): 3773-3782.
[15] [15] CREMERS D A, BAREFIELD J E, KOSKELO A C. Remote elemental analysis by laser-induced breakdown spectroscopy using a fiber-optic cable[J]. Applied Spectroscopy, 1995, 49(6): 857-860.
[16] [16] ROHWETTER P, STELMASZCZYK K, WSTE L, et al. Filament-induced remote surface ablation for long range laser-induced breakdown spectroscopy operation[J]. Spectrochimica Acta Part B: Atomic Spectroscopy, 2005, 60: 1025-1033.
[17] [17] STELMASZCZYK K, ROHWETTER P, MJEAN G, et al. Long-distance remote laser-induced breakdown spectroscopy using filamentation in air[J]. Applied Physics Letters, 2004, 85: 39773979.
[18] [18] ALMAVIVA S, FANTONI R, CANEVE L, et al. Use of ns and fs pulse excitation in laser-induced breakdown spectroscopy to improve its analytical performances: A case study on quaternary bronze alloys[J]. Spectrochimica Acta Part B: Atomic Spectroscopy, 2014, 99: 185-192.
[19] [19] HUANG J S, KE C B, LIN K C. Matrix effect on emission/current correlated analysis in laser-induced breakdown spectroscopy of liquid droplets[J]. Spectrochimica Acta Part B: Atomic Spectroscopy, 2004, 59: 321-326.
[20] [20] MAURY C, SIRVEN J B, TABARANT M, et al. Analysis of liquid sodium purity by laser-induced breakdown spectroscopy. Modeling and correction of signal fluctuation prior to quantitation of trace elements[J]. Spectrochimica Acta Part B: Atomic Spectroscopy, 2013, 82: 28-35.
[21] [21] ZHANG Da-cheng, MA Xin-wen, ZHU Xiao-long, et al. Application of laser-induced breakdown spectroscopy in analyzing microelements in three kinds of fruit samples[J]. Acta Physica Sinica, 2008, 57(10): 6348-6353.
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ZHANG Da-cheng, FENG Zhong-qi, LI Xiao-gang, XU Li-jun, ZHAO Dong-mei, ZHU Xiao-long, MA Xin-wen. Quantitative Analysis of Aluminium Alloy with Remote Laser-induced Breakdown Spectroscopy[J]. Acta Photonica Sinica, 2018, 47(8): 847010
Received: Jul. 11, 2018
Accepted: --
Published Online: Sep. 16, 2018
The Author Email: Da-cheng ZHANG (dch.zhang@xidian.edu.cn)