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Ultra-Small Focal Spot X-Ray Sources for High Resolution Digital Mammography

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Digital Mammography

Part of the book series: Computational Imaging and Vision ((CIVI,volume 13))

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Abstract

The laser-based x-ray source utilizes a high-power and coherent light beam for x-rays production. In this device laser beam impinge on a solid target. Initially, a thin layer of solid density cold plasma (with electron temperature Te∼0.5 keV is being created on the surface of the target [1]. In the next stage, energy is transferred from the laser light to free electrons in the solid plasma. As a result, a low density hot plasma is being created above the target with hot electron temperature, Te≈25 keV). Up to 40% of laser light energy can be transferred to hot (suprathermal) electrons. A significant fraction of hot electrons returns to the positively charged space-charge region on the target surface previously created due to emission of suprathermal electrons. Consequently, the hot electrons penetrate the target producing a burst of incoherent x-rays, composed of continuous bremsstrahlung emission and discrete characteristic x-ray emission lines [2], The effective size of the Laser Produced Plasma (LPP) x-ray source and the duration of the x-ray pulse always exceeds the size and the duration of laser light pulse. Nevertheless, it is extremely small (tens of microns) and short (picoseconds). The conversion efficiency of the LPP x-ray source (F x ) defined as the ratio of the energy emitted in the x-ray burst generated by LPP to the energy in the laser light pulse, is approximately proportional to the square root of the laser beam intensity, i.e. to the peak electric field of the laser light, and to the atomic number Z of the target, F x E peak · Z [3]. It is analogous to the x-ray tube conversion efficiency law, F x V·Z and similar conversion efficiency can be expected (i.e. below 1%) in both cases.

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References

  1. Kieffer JC, Audebert P, Chaker M, Matte JP, Pepin H, Johnston, Maine P, Meyerhofer D, Delettrez J, Strickland D, Bado P and Mourou G, (1989) Short pulse laser absorption in very steep plasma density gradients. Phys. Rev. Lett. 62, pp. 760–763.

    Article  PubMed  CAS  Google Scholar 

  2. Kieffer JC, Chaker M, Matte JP, Cote CY, Beaudoin Y, Jiang Z, Chien CY, Coe S, Mourou G, Peyrusse O, and Gilles D, (1993) Ultrafast x-ray emission from ultrashort plasmas. SPIE Proc. 1860 (Short pulse high intensity lasers and applications II), pp. 127–132.

    Google Scholar 

  3. Kmetec JD, Gordon III CL, Macklin JJ, Lemoff BE, Brown GS, and Harris SE, MeV x-ray generation with femtosecond laser. (1992) Phys. Rev. Lett 68, pp. 1527–1530.

    Article  PubMed  CAS  Google Scholar 

  4. Krol A, Ikhlef A, Kieffer J-C, Bassano DA, Chamberlain CC, Jinag Z, Pepin H, and Prasad SC, Laser-based microfocused x-ray source for mammography: Feasibility studies. (1997) Med. Phys. 24, pp. 725–731.

    Article  PubMed  CAS  Google Scholar 

  5. Huda W, Krol A, Jing Z and Boone J, (1998) Signal to noise ratio and radiation dose as function of photon energy in mammography. SPIE Proc 3336, in press.

    Google Scholar 

  6. Krol A, Kieffer JC, Jiang Z, Huda W, Chamberlain CC and Yu J, Energy selective laser-based x-ray source for mammography. (1998) SPIE Proc 3336, in press.

    Google Scholar 

  7. Tzannnes AP and Mooney JM, Measurements of the modulation transfer function of infrared cameras. (1995) Optical Eng. 34, pp. 1808–1817.

    Article  Google Scholar 

  8. Prasad SC, Hendee WR and Carson PL, (1976) Intensity distribution, modulation transfer function, and the effective dimension of a line-focus x-ray focal spot. Med. Phys. 3, pp. 217–223.

    Article  PubMed  CAS  Google Scholar 

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© 1998 Springer Science+Business Media Dordrecht

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Krol, A., Huda, W., Chamberlain, C.C., Kieffer, JC., Jiang, Z., Yu, J. (1998). Ultra-Small Focal Spot X-Ray Sources for High Resolution Digital Mammography. In: Karssemeijer, N., Thijssen, M., Hendriks, J., van Erning, L. (eds) Digital Mammography. Computational Imaging and Vision, vol 13. Springer, Dordrecht. https://doi.org/10.1007/978-94-011-5318-8_8

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  • DOI: https://doi.org/10.1007/978-94-011-5318-8_8

  • Publisher Name: Springer, Dordrecht

  • Print ISBN: 978-94-010-6234-3

  • Online ISBN: 978-94-011-5318-8

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