318
R. Das et al.
References
1. F.J. Fortes, J.J. Laserna, The development of fieldable laser-induced breakdown spectrometer:
no limits on the horizon. Spectrochim. Acta Part B: Atom. Spectrosc. 65(12), 975–990 (2010)
2. F. Anabitarte, A. Cobo, J.M. Lopez-Higuera, Laser-induced breakdown spectroscopy: fundamentals, applications, and challenges, in ISRN Spectroscopy 2012 (2012), p. 285240
3. F.J. Fortes et al., Laser-induced breakdown spectroscopy. Analytical Chemistry 85(2), 640–669
(2013)
4. A.K. Knight et al., Characterization of laser-induced breakdown spectroscopy (LIBS) for application to space exploration. Applied Spectroscopy 54(3), 331–340 (2000)
5. A. Miloshevsky et al., Dynamics of plasma expansion and shockwave formation in femtosecond
laser-ablated aluminum plumes in argon gas at atmospheric pressures, in Physics of Plasmas,
vol. 21(4) (2014), p. 043111
6. F. Colao et al., Investigation of LIBS feasibility for in situ planetary exploration: An analysis on
Martian rock analogues, in Planetary and Space Science, vol. 52(1). Exploring Mars Surface
and its Earth Analogues (2004), pp. 117– 123
7. K.M.M. Shameem et al., Echelle LIBS-Raman system: A versatile tool for mineralogical and
archaeological applications, in Talanta, vol. 208 (2020), p. 120482
8. R. CWiens et al., Joint analyses by laser-induced breakdown spectroscopy (LIBS) and Raman
spectroscopy at stand-off distances, in Spectrochimica Acta Part A: Molecular and Biomolecular Spectroscopy, vol. 61(10) (2005), pp. 2324–2334
9. Q. Wang et al., A brief review of laser-induced breakdown spectroscopy for human and animal soft tissues: pathological diagnosis and physiological detection, in Applied Spectroscopy
Reviews (2020), pp. 1–21
10. D.W. Hahn, N. Omenetto, Laser-induced breakdown spectroscopy (LIBS), Part II: review of
instrumental and methodological approaches to material analysis and applications to different
fields. Appl. Spectrosc. 66(4), 347–419 (2012)
11. J. Rakovsk et al., Testing a portable laser-induced breakdown spectroscopy system on geological samples. Spectrochim. Acta Part B: Atom. Spectrosc. 74, 57–65 (2012)
12. K. Melessanaki, A. Brysbaert, D. Anglos, Pigment analysis in Bronze Age Aegean and Eastern
Mediterranean painted plaster by laser-induced breakdown spectroscopy (LIBS). J. Archaeol.
Sci. 33(8), 1095–1104 (2006)
13. D. Anglos, Laser-induced breakdown spectroscopy in art and archaeology. Appl. Spectrosc.
55(6), 186A–205A (2001)
14. F.C. DeLucia et al., Laser-induced breakdown spectroscopy (LIBS): a promising versatile
chemical sensor technology for hazardous material detection. IEEE Sens. J. 5(4), 681–689
(2005)
15. A. Kula et al., Application of laser induced breakdown spectroscopy to examination of writing
inks for forensic purposes. Sci. Justice 54(2), 118–125 (2014)
16. K.M. Muhammed Shameem et al., Laser-induced breakdown spectroscopy- Raman: an effective complementary approach to analyze renal-calculi. J. Biophoton. 11(6) (2018), e201700271
17. Y. Li et al., A review of laser-induced breakdown spectroscopy signal enhancement. Appl.
Spectrosc. Rev. 53(1), 1–35 (2018)
18. G. Nicolodelli et al., Double pulse laser induced breakdown spectroscopy: apotential tool for
the analysis of contaminants and macro/micronutrients in organic mineral fertilizers. Sci. Total
Environ. 565, 1116–1123 (2016)
19. M. Dell’Aglio, R. Alrifai, A. De Giacomo, Nanoparticle enhanced laser induced breakdown
spectroscopy (NELIBS), a first review. Spectrochim. Acta Part B: Atom. Spectrosc. 148, 105–
112 (2018)
20. T.A. Labutin et al., Femtosecond laser-induced breakdown spectroscopy. J. Anal. Atom. Spectrom. 31(1), 90–118 (2016)
21. Q. Lin et al., Combined laser-induced breakdown with Raman spectroscopy: historical technology development and recent applications. Appl. Spectrosc. Rev. 48(6), 487–508 (2013)
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