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A StarDriver-Class Laser Achieving 1 % Beam Uniformity in 1 ns

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Abstract

StarDriver was recently proposed as a highly flexible laser driver for inertial confinement fusion and high energy density physics. It envisions a laser drive consisting of many beamlets at an aperture where optical technology is well-developed, and each beamlet has energy ~100 J in a several times diffraction limited beam. Each beamlet has ~1.5THz of 2D SSD smoothing, but the ensemble of lasers has frequency bandwidth 2–10 %, thereby providing significant control of both hydrodynamic and laser-plasma instabilities. In this paper we illustrate the attractive features of the StarDriver concept with detailed calculations of beam smoothing for control of hydrodynamic instabilities in a direct drive ICF target, using a full 3D simulation of the laser drive. We describe here a StarDriver-class laser with 5120 physical beamlets disposed about the target chamber in 80 evenly spaced ports, each port containing 64 beamlets, each beamlet having about ~1.5THz of 2D SSD bandwidth and suitable phase plates, an aperture of ~65 mm, an energy of 80 J, and frequency-converted to ~351 nm. The drive at the target is ~400 kJ, has a well-behaved low L-mode spectrum, and smoothes very rapidly, reaching an asymptotic smoothness of <1 % in less than 1 ns. 2 MJ of drive at the same smoothing performance may be obtained by increasing the number of beamlets. An attractive feature of StarDriver is that the tolerances on the individual beamlet parameters are quite relaxed.

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References

  1. E. Michael Campbell, W.J. Hogan, The national ignition facility: applications for inertial fusion energy and high energy density science. 26th European physical society conference on controlled fusion and plasma physics, Maastricht, 14–18 June 1999

  2. E. Michael Campbell, W.J. Hogan, D.H. Crandall, Inertial fusion science and technology for the next century. First international conference on inertial fusion sciences and applications, Bordeaux, 12–17 Sept 1999

  3. E. Michael Campbell, W.J. Hogan, D.H. Crandall, Inertial fusion energy development: what is needed and what will be learned at the national ignition facility first. International conference on inertial fusion sciences and applications, Bordeaux, 12–17 Sept 1999

  4. C.A. Haynam et al., National ignition facility laser performance status. Appl. Opt. 46(16), 3276 (2007)

    Article  ADS  Google Scholar 

  5. J.A. Paisner, E.M. Campbell, W.F. Hogan, The national ignition facility project. ANS 11th Annual conference on fusion energy, New Orleans, 16th June 1994

  6. J. Lindl, Development of the indirect drive approach to inertial confinement fusion and the target physics basis for ignition and gain. Phys. Plasmas 2, 3933 (1995)

    Article  ADS  Google Scholar 

  7. LLE Review, Scientific reports of the laboratory for laser energetics, University of Rochester, 250 E. River Rd, Rochester, pp. 1–126

  8. R.L. McCrory, Laser-driven inertial fusion energy; direct-drive targets overview. NAS/NAE committee on the prospects for IFE systems, San Ramon, 29 Jan 2011

  9. R.H. Lehmberg, S.P. Obenschain, The use of induced spatial coherence for uniform illumination of laser fusion targets. Opt. Commun. 46, 27 (1983)

    Article  ADS  Google Scholar 

  10. S. Skupsky et al., Improved laser-beam uniformity using the angular dispersion of frequency modulated light. J. App. Phys. 66, 3456 (1989)

    Article  ADS  Google Scholar 

  11. J. Lindl, Development of the indirect drive approach to inertial confinement fusion and the target physics basis for ignition and gain. Phys. Plasmas 2, 3933 (1995)

    Article  ADS  Google Scholar 

  12. R.S. Craxton et al., Direct-drive inertial confinement fusion: a review. Phys. Plasmas 22, 110501 (2015)

    Article  ADS  Google Scholar 

  13. J.E. Rothenberg, S.V. Weber, The impact of beam smoothing method on direct drive target performance for the NIF. 2nd Annual international conference on solid-state lasers for application to ICF, Paris, 22–25 Oct 1996

  14. D. Eimerl, W. Kruer, E.M. Campbell, Ultrabroad bandwidth for ICF applications. Comments Plasma Phys. 15, 85 (1993)

    Google Scholar 

  15. C.D. Orth, S.A. Payne, W.F. Krupke, A diode pumped solid state laser driver for inertial fusion energy. Nucl. Fusion 36, 75 (1996)

    Article  ADS  Google Scholar 

  16. E.Michael Campbell, D. Eimerl, W.F. Krupke, StarDriver: a flexible laser driver for inertial fusion energy. US Patent Application #PCT/US2012/034289, 19 Apr 2012

  17. D. Eimerl, E. Michael Campbell, W.F. Krupke, J. Zweiback, W.L. Kruer, J. Zuegel, J. Myatt, J. Kelly, D. Froula, R.L. McCrory, StarDriver: a flexible laser driver for inertial confinement fusion and high energy density physics. J. Fusion Energ. 33, 476–488 (2014)

    Article  Google Scholar 

  18. Projections of the cost of the 2 MJ NIF laser based on the 80 kJ NOVA laser technology and design were in the range of 15–20 bn. Actual NIF laser cost was about 2–4 bn

  19. N.A. Teanby, An icosahedron-based method for even binning of globally distributed remote sensing data. Comput. Geosci. 32, 1442–1450 (2006)

    Article  ADS  Google Scholar 

  20. M. Tegmark, An icosahedron-based method for pixelizing the celestial sphere. Astrophys. J. Lett. 470, 81 (1996)

    Article  ADS  Google Scholar 

  21. P. Leopardi, A partition of the unit sphere into regions of equal area and small diameter. Electr. Trans. Numer. Anal. 25, 309–327 (2006)

    MathSciNet  MATH  Google Scholar 

  22. Y.M. Zhou, Arrangements of points on the sphere, Thesis, Tampa, 1995

  23. M. Murakami, N. Sarukura, H. Azechi, M. Temporal, A.J. Schmidt, Optimization of irradiation configuration in laser fusion utilizing self-organizing electrodynamic system. Phys. Plasmas 17, 082702 (2010)

    Article  ADS  Google Scholar 

  24. S. Atzeni, Inertial confinement fusion with advanced ignition schemes: fast ignition and shock ignition. Laser Plasma Interact. Appl. (Scottish Graduate Series) Part III, pp. 243–277 (2013)

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Acknowledgments

One of us (DE) was supported in this work by the University of Rochester LLE, 250 River Road, Rochester NY 14623, under Contract U943038-15. We are grateful for productive discussions with John Marozas, Bob McCrory, Jason Myatt, Bill Krupke, Bob Lehmberg, Jason Zweiback,Steve Bodner, and Steve Obenschain.

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Correspondence to David Eimerl.

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Eimerl, D., Skupsky, S., Myatt, J. et al. A StarDriver-Class Laser Achieving 1 % Beam Uniformity in 1 ns. J Fusion Energ 35, 459–469 (2016). https://doi.org/10.1007/s10894-016-0062-5

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