Quantitative analysis of lead in aqueous solutions by ultrasonic nebulizer assisted laser induced breakdown spectroscopy

Shi-Lei Zhong (钟石磊), Yuan Lu (卢渊), Wei-Jin Kong (孔伟金), Kai Cheng (程凯), Ronger Zheng (郑荣儿)

PDF(440 KB)
PDF(440 KB)
Front. Phys. ›› 2016, Vol. 11 ›› Issue (4) : 114202. DOI: 10.1007/s11467-015-0543-4
RESEARCH ARTICLE
RESEARCH ARTICLE

Quantitative analysis of lead in aqueous solutions by ultrasonic nebulizer assisted laser induced breakdown spectroscopy

Author information +
History +

Abstract

In this study, an ultrasonic nebulizer unit was established to improve the quantitative analysis ability of laser-induced breakdown spectroscopy (LIBS) for liquid samples detection, using solutions of the heavy metal element Pb as an example. An analytical procedure was designed to guarantee the stability and repeatability of the LIBS signal. A series of experiments were carried out strictly according to the procedure. The experimental parameters were optimized based on studies of the pulse energy influence and temporal evolution of the emission features. The plasma temperature and electron density were calculated to confirm the LTE state of the plasma. Normalizing the intensities by background was demonstrated to be an appropriate method in this work. The linear range of this system for Pb analysis was confirmed over a concentration range of 0–4,150ppm by measuring 12 samples with different concentrations. The correlation coefficient of the fitted calibration curve was as high as 99.94% in the linear range, and the LOD of Pb was confirmed as 2.93ppm. Concentration prediction experiments were performed on a further six samples. The excellent quantitative ability of the system was demonstrated by comparison of the real and predicted concentrations of the samples. The lowest relative error was 0.043% and the highest was no more than 7.1%.

Keywords

laser-induced breakdown spectroscopy (LIBS) / ultrasonic nebulizer / quantitative analysis / water solution / plasma diagnostics

Cite this article

Download citation ▾
Shi-Lei Zhong (钟石磊), Yuan Lu (卢渊), Wei-Jin Kong (孔伟金), Kai Cheng (程凯), Ronger Zheng (郑荣儿). Quantitative analysis of lead in aqueous solutions by ultrasonic nebulizer assisted laser induced breakdown spectroscopy. Front. Phys., 2016, 11(4): 114202 https://doi.org/10.1007/s11467-015-0543-4

References

[1]
B. He, Z. Yun, J. Shi, and G. Jiang, Research progress of heavy metal pollution in China: sources, analytical methods, status, and toxicity, Chinese Science Bulletin 58, 134 (2013)
CrossRef ADS Google scholar
[2]
MoEPot PRC, Integrated wastewater discharge standard (GB 8978-1996), 1996
[3]
G. Who, Guidelines for drinking-water quality, World Health Organization, 2011
[4]
D. V. Biller and K. W. Bruland, Analysis of Mn, Fe, Co, Ni, Cu, Zn, Cd, and Pb in seawater using the Nobias-chelate PA1 resin and magnetic sector inductively coupled plasma mass spectrometry (ICP-MS), Marine Chemistry 130, 12 (2012)
CrossRef ADS Google scholar
[5]
B. N. Kumar, D. Venkata Ramana, Y. Harinath, K. Seshaiah, and M. Wang, Separation and Preconcentration of Cd (II), Cu (II), Ni (II), and Pb (II) in Water and Food Samples Using Amberlite XAD-2 Functionalized with 3-(2-Nitrophenyl)-1 H-1, 2, 4-triazole-5 (4 H)-thione and Determination by Inductively Coupled Plasma–Atomic Emission Spectrometry, J. Agricult.Food Chem.59, 11352 (2011)
CrossRef ADS Google scholar
[6]
S. Ayata, S. S. Bozkurt, and K. Ocakoglu, Separation and preconcentration of Pb (II) using ionic liquid-modified silica and its determination by flame atomic absorption spectrometry, Talanta84, 212 (2011)
CrossRef ADS Google scholar
[7]
Z. Wang, T.-B. Yuan, Z.-Y. Hou, W.-D. Zhou, J.-D. Lu, H.-B. Ding, and X.-Y. Zeng, Laser-induced breakdown spectroscopy in China, Front. Phys.9(4), 438 (2014)
CrossRef ADS Google scholar
[8]
A. De Giacomo, M. Dell'Aglio, O. De Pascale, and M. Capitelli, From single pulse to double pulse ns-laser induced breakdown spectroscopy under water: Elemental analysis of aqueous solutions and submerged solid samples, Spectrochim. Acta Part B 62, 721 (2007)
CrossRef ADS Google scholar
[9]
J.-S. Xiu, X.-S. Bai, V. Motto-Ros, and J. Yu, Characteristics of indirect laser-induced plasma from a thin film of oil on a metallic substrate, Front. Phys. 10(2), 104204 (2015)
CrossRef ADS Google scholar
[10]
D. W. Hahn and N. Omenetto, Laser-induced breakdown spectroscopy (LIBS) (I): Review of basic diagnostics and plasma–particle interactions: Still-challenging issues within the analytical plasma community, Applied Spectroscopy 64, 335A (2010)
CrossRef ADS Google scholar
[11]
P. Fichet, P. Mauchien, J.-F. Wagner, and C. Moulin, Quantitative elemental determination in water and oil by laser induced breakdown spectroscopy, Analytica Chimica Acta429, 269 (2001)
CrossRef ADS Google scholar
[12]
D. D. Pace, C. D'Angelo, D. Bertuccelli, and G. Bertuccelli, Analysis of heavy metals in liquids using laser induced breakdown spectroscopy by liquid-to-solid matrix conversion, Spectrochim. Acta Part B 61, 929 (2006)
CrossRef ADS Google scholar
[13]
J. Wu, Y. Fu, Y. Li, Y. Lu, Z. Cui, and R. Zheng, Detection of metal ions in water solution by laser induced breakdown spectroscopy, Spectroscopy and Spectral Analysis 28, 1979 (2008)
[14]
J. Xiu, H. Hou, S. Zhong, Z. Wang, Y. Lu, and R. e. Zheng, Quantitative determination of heavy metal element Pb in aqueous solutions by laser-induced breakdown spectroscopy using paper slice substrates, Chinese Journal of Lasers 38, 0815003 (2011)
CrossRef ADS Google scholar
[15]
H. R. Griem, Plasma Spectroscopy, New York: McGraw-Hill, 1964, p. 1
[16]
N. E. Schmidt and S. R. Goode, Analysis of aqueous solutions by laser-induced breakdown spectroscopy of ion exchange membranes, Applied Spectroscopy 56, 370 (2002)
CrossRef ADS Google scholar
[17]
H. Zhang, F.-Y. Yueh, and J. P. Singh, Performance evaluation of laser-induced breakdown spectrometry as a multimetal continuous emission monitor, J. Air Waste Manag. Assoc.51, 681 (2001)
CrossRef ADS Google scholar
[18]
J. P. Singh and S. N. Thakur, Laser-Induced Breakdown Spectroscopy, Elsevier, 2007
[19]
N. Aras, S. Ü. Yeşiller, D. A. Ateş, and Ş. Yalçın, Ultrasonic nebulization-sample introduction system for quantitative analysis of liquid samples by laser-induced breakdown spectroscopy, Spectrochim. Acta Part B 74, 87 (2012)
CrossRef ADS Google scholar
[20]
S. Zhong, Y. Lu, K. Cheng, and R.-E. Zheng, Ultrasonic nebulizer assisted LIBS for detection of trace metal elements dissolved in water, Spectroscopy and Spectral Analysis31, 1458 (2011)
[21]
M. A. Tarr, G. Zhu, and R. F. Browner, Fundamental aerosol studies with an ultrasonic nebulizer, Applied Spectroscopy 45, 1424 (1991)
CrossRef ADS Google scholar
[22]
J. Cáceres, J. T. López, H. Telle, and A. G. Ureña, Quantitative analysis of trace metal ions in ice using laser-induced breakdown spectroscopy, Spectrochim. Acta Part B 56, 831 (2001)
CrossRef ADS Google scholar
[23]
H. R. Griem, High-density corrections in plasma spectroscopy, Phys. Rev.128, 997 (1962)
CrossRef ADS Google scholar
[24]
V. Lazic, S. Jovicevic, R. Fantoni, and F. Colao, Underwater by an optimized laser excitation and its application for liquid analyses by laser-induced breakdown spectroscopy, Spectrochim. Acta Part B 62, 1433 (2007)
CrossRef ADS Google scholar

RIGHTS & PERMISSIONS

2016 Higher Education Press and Springer-Verlag Berlin Heidelberg
AI Summary AI Mindmap
PDF(440 KB)

Accesses

Citations

Detail

Sections
Recommended

/