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SUN Duixiong(孙对兄), SU Maogen(苏茂根), DONG Chenzhong(董晨钟), WEN Guanhong(温冠宏). A Comparative Study of the Laser Induced Breakdown Spectroscopy in Single- and Collinear Double-Pulse Laser Geometry[J]. Plasma Science and Technology, 2014, 16(4): 374-379. DOI: 10.1088/1009-0630/16/4/13
Citation: SUN Duixiong(孙对兄), SU Maogen(苏茂根), DONG Chenzhong(董晨钟), WEN Guanhong(温冠宏). A Comparative Study of the Laser Induced Breakdown Spectroscopy in Single- and Collinear Double-Pulse Laser Geometry[J]. Plasma Science and Technology, 2014, 16(4): 374-379. DOI: 10.1088/1009-0630/16/4/13

A Comparative Study of the Laser Induced Breakdown Spectroscopy in Single- and Collinear Double-Pulse Laser Geometry

Funds: supported by National Natural Science Foundation of China (Nos. 11274254, 11364037, 11064012) and the JSPS-NRF-NSFC A3 Foresight Program in the field of Plasma Physics (No. 11261140328), and the International Scientic and Technologic Cooperative Project of Gansu Province, China (No. 1104WCGA186)
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  • Received Date: January 14, 2013
  • Two Q-switched Nd:YAG lasers at 1064 nm wavelength have been employed to produce plasmas on aluminum-based alloy in single- and collinear double-pulse laser induced breakdown spectroscopy (LIBS). Time resolved technique was used for detecting emission sig- nal by spectrometer equipped with ICCD detector. The intensity calibration of spectral response was performed by using deuterium and tungsten halogen lamps. Time evolution of the plasma temperature and electron number density was investigated in single- and collinear double-pulse experiments. Based on the investigation of plasma parameters, the emission signal enhancement mechanism was discussed qualitatively.
  • 1 Cremers D A. 1987, Appl. Spectrosc., 41: 572;
    2 Sabsabi M, Cielo P. 1995, Appl. Spectrosc., 49: 499;
    3 Rusak D A, Castle B C, Smith B W, et al. 1998, Anal.Chem., 17: 453;
    4 St-Onge, Sabsabi M. 2000, Spectrochim. Acta Part B,55: 299;
    5 Arca G, Ciucci A, Palleschi V. 1996, Appl. Phys. B,63: 185;
    6 Lee D H, Han S C, Kim T H, et al. 2011, Anal. Chem.,83: 9456;
    7 Tsai S J J, Chen S Y, Chung Y S. 2006, Anal. Chem.,78: 7432;
    8 Winefordner J D, Gornushkin I B, Correll T, et al.2004, J. Anal. At. Spectrom., 19: 1061;
    9 Piepmeier E H, Malmstadt H V. 1969, Anal. Chem.,41: 700;
    10 Scott R H, Strasheim A. 1970, Spectrochim. Acta Part B, 25: 311;
    11 Cremers D A, Radziemski L J, Loree T R. 1984, Appl.Spectrosc., 38: 721;
    12 Uebbing J, Brust J, Sdorra W, et al. 1991, Appl. Spec-trosc., 45: 1419;
    13 St-Onge L, Detalle V, Sasabi M. 2002, Spectrochim.Acta Part B, 57: 121;
    14 Straitis D N, Eland K L, Angle S M, et al. 2001, Appl.Spectrosc., 55: 1297;
    15 Angel S M, Straitis D N, Eland K L, et al. 2001, Anal.Chem., 369: 320;
    16 Gautier C, Fichet P, Menut D, et al. 2005, Spec-trochim. Acta Part B, 60: 265;
    17 Scaffdi J, Angel S M, Cremers D A. 2006, Anal.Chem., 78: 24;
    18 Sattmann R, Sturm V, Noll R. 1995, Appl. Phys., 28:2181;
    19 Corsi M, Cristoforetti G, Giuffrida M. 2004, Spec-trochim. Acta Part B, 59: 723;
    20 Cristoforetti G, Legnaioli S, Palleschi V. 2004, Spec-trochim. Acta Part B, 59: 1907;
    21 Noll R, Sattmann R, Sturm V. 2004, J. Anal. At. Spec-trom., 19: 419;
    22 Mukherjee P, Chen S, Witanachchi S. 1999, Appl.Phys. Lett., 74: 1546;
    23 Kumar A, Yueh F Y, Singh J P. 2003, Appl. Opt., 42:6047;
    24 Benedetti P A, Cristoforetti G, Legnaioli S, et al. 2005,Spectrochimi. Acta Part B, 60: 1392;
    25 Peng L L, Sun D X, Su M G, et al. 2012, Optics &Laser Technology, 44: 2469;
    26 Han J T, Sun D X, Su M G, et al. 2012, Analytical Letters, 45: 1936;
    27 Taschuk M T, Godwal Y, Tsui Y Y, et al. 2008, Spec-trochim. Acta Part B, 63: 525;
    28 National Institute of Standards and Technology,http://physics.nist.gov/PhysRefData/ASD/lines form.html;
    29 Yalcin S, Crosley D R, Smith G P, et al. 1999, Appl.Phys. B, 68: 121;
    30 Aguilera J A, Aragón C. 2004, Spectrochim. Acta Part B, 59: 1861;
    31 Colon C, Hatem G, Verdugo E, et al. 1993, Appl.Phys., 73: 4752;
    32 Ahmed R, Baig M A. 2009, J. Appl. Phys., 106: 03307;
    33 Griem H R. 1974, Spectral Line Broadening by Plasma. Acdemic Press, New York;
    34 McWhirter R W P, Huddlestone R H, Leonard S L.1965, Plasma Diagnostic Techniques. Academic Press,New York;
    35 Aragón, Aguilera J A. 2008, Spectrochimica Acta Part B, 63: 893;
    36 Beke G. 1976, Principles of Laser Plasmas. John Wi-ley & Sons, New York;
    37 Beldjilali S, Yip W L, Jermann J, et al. 2011, Anal.Bioanal. Chem., 400: 2173
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