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Migration of Carbon in Tempered Martensitic Steel During Excimer Laser Melting

Published online by Cambridge University Press:  25 February 2011

J-P. Hirvonen
Affiliation:
Materials Science and Technology Division, Los Alamos National Laboratory, Los Alamos, NM 87545
T. R. Jervis
Affiliation:
Materials Science and Technology Division, Los Alamos National Laboratory, Los Alamos, NM 87545
T. G. Zocco
Affiliation:
Materials Science and Technology Division, Los Alamos National Laboratory, Los Alamos, NM 87545
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Abstract

The migration of ion implanted 13C in tempered martensitic steel (nominal composition 1.05 wt. % C, 0.2 wt. % Si, and 0.3 wt. % Mn) during excimer laser melting was examined utilizing the resonance of the l3C(p,γ)14N reaction at Ep = 1747.6 keV. Depth concentration profiles after five and ten laser pulses of 1 J/cm2 revealed a deviation from random walk diffusion in a homogeneous media. This was modelled by using partitionless solidification and solubility controlled flow of carbon in the iron-carbon melt. A diffusion length of nm during the period to τ the melted phase was deduced. Ion implanted surfaces were initially crystalline but significant crystalline to amorphous transformation occurred following laser treatment.

Type
Research Article
Copyright
Copyright © Materials Research Society 1990

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References

REFERENCES

1 Shank, C. V., Yen, R., and Hirlimann, C., Phy. Rev. Lett. 51, 900 (1983)Google Scholar
2 Akhmanov, S. A., Galyautdinov, M. F., Koroteev, N. I., Paityan, G. A., Khaibullin, I. B., Shtyrkov, E. I., and Shumai, I. L., Sov. J. Quantum Electron. 13, 687 (1983)Google Scholar
3 Hicks, J. M., Urbach, L. E., Plummer, E. W., and Dai, H. L., Phys. Rev. Lett. 61, 2588 (1988)Google Scholar
4 Compaan, A., Lee, M. C., Lo, H. W., Trott, G. J., and Aydinli, A., J. Appl. Phys. 54, 5950 (1983)Google Scholar
5 Wartmann, G., Kemmler, M., and von der Linde, D., Phys. Rev. B30, 4850 (1984)Google Scholar
6 Lipatov, N. I., Polivano, Yu. N., and Sayakhov, R. Sh. in "Laser Optics of Condensed Matter," ed. Birman, J. L., Cummins, H. Z., and Kaplyanskii, A. A. (Plenum Press, New York and London, 1988), p.169 Google Scholar
7 Tsao, J. Y., Picraux, S. T., Peercy, P. S., and Thompson, M. O., App. Phys. Lett. 48, 278 (1986)Google Scholar
8 Baltzer, N., Von Allmen, M., and Sigrist, M. W., Appl. Phys. Lett. 43, 826 (1983)Google Scholar
9 Shank, C. V., Yen, R., and Hirlimann, C., Phy. Rev. Lett. 50, 454 (1983)Google Scholar
10 Lompre, L. A., Liu, J. M., Kurz, H., and Bloembergen, N., App. Phys. Lett 43, 168 (1983)Google Scholar
11 Schoenlein, R. W., Lin, W. Z., Fujimoto, J. G., and Eesley, G. L., Phys. Rev. Lett. 58, 1680 (1987)Google Scholar
12 Fujimoto, J. G. and Ippen, E. P. in "Laser Optics of Condenced Matters," ed. Birman, J. L., Cummins, H. Z., and Kaplyanskii, A.A., (Plenum Press, New York 1988), p.11 Google Scholar
13 Elsayed-Ali, H. E., Norris, T. B., Pessot, M. A., and Mourou, G. A., Phys. Rev. Lett. 58, 1212 (1987)Google Scholar
14 Larson, B. C., Tischler, J. Z., and Mills, D. M., J. Mater. Res. 1, 144 (1986); Appl. Phys. Lett. 52, 1785 (1988)Google Scholar
15 Becker, R. S., Higashi, G. S., and Golovchenko, J. A., Phys. Rev. Lett. 52, 307 (1984)Google Scholar
16 Mourou, G. and Williamson, S., Appl. Phys. Lett. 41, 44 (1982); S. Williamson, G. Mourou and J. C. M. Li, Phys. Rev. Lett. 52, 2364 (1984)Google Scholar
17 Duling III, I. N., Norris, T., Sizer II, T., Bado, P., and Mourou, G. A., J. Opt. Soc. Am. B2, 616 (1985)Google Scholar
18 Debye, P., Verh. Deut. Phys. Ges. 15, 678, 738, 857 (1913); Ann. Phys. 43, 49 (1913-1914); I. Waller, Ann. Phys. 79, 261 (1926); 83, 153 (1927)Google Scholar
19 Klug, H. P. and Alexander, L. E., "X-ray Diffraction Procedures for Polycrystalline and Amorphous Materials," 2nd ed. (John Wiley & Sons, New York 1974), p. 144 Google Scholar
20 Glaeser, W. and Niedrig, H., J. Appl. Phys. 37, 4303 (1966)Google Scholar
21 Albrecht, W. W. and Niedrig, H., J. Appl. Phys. 39, 3166 (1968)Google Scholar
22 Van Vechten, J. A., Tsu, R., Saris, F. W., and Hoonhout, D., Phys. Lett. 74A, 417 (1979)Google Scholar
23 Van Vechten, J. A., Tsu, R., and Saris, F. W., Phys. Lett. 74A, 422 (1979)Google Scholar