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1. Reaching a burning plasma and ignition using smaller capsules/Hohlraums, higher radiation temperatures, and thicker ablator/ice on the national ignition facility

2. Specular reflections (“glint”) of the inner beams in a gas-filled cylindrical hohlraum

5. The effects of multispecies Hohlraum walls on stimulated Brillouin scattering, Hohlraum dynamics, and beam propagation

6. Developing “inverted-corona” fusion targets as high-fluence neutron sources

7. Low mode implosion symmetry sensitivity in low gas-fill NIF cylindrical hohlraums

8. Fill tube dynamics in inertial confinement fusion implosions with high density carbon ablators

11. Experimental demonstration of the reduced expansion of a laser-heated surface using a low density foam layer, pertaining to advanced hohlraum designs with less wall-motion

12. Hotspot conditions achieved in inertial confinement fusion experiments on the National Ignition Facility

13. Understanding ICF hohlraums using NIF gated laser-entrance-hole images

14. The Crystal Backlighter Imager: A spherically bent crystal imager for radiography on the National Ignition Facility

15. Simultaneous visualization of wall motion, beam propagation, and implosion symmetry on the National Ignition Facility (invited)

16. First demonstration of improved capsule implosions by reducing radiation preheat in uranium vs gold hohlraums

17. Increasing stagnation pressure and thermonuclear performance of inertial confinement fusion capsules by the introduction of a high-Z dopant

18. Development of new platforms for hydrodynamic instability and asymmetry measurements in deceleration phase of indirectly driven implosions on NIF

19. Exploring the limits of case-to-capsule ratio, pulse length, and picket energy for symmetric hohlraum drive on the National Ignition Facility Laser

20. Variable convergence liquid layer implosions on the National Ignition Facility

21. Comparison of plastic, high density carbon, and beryllium as indirect drive NIF ablators

22. Visualizing deceleration-phase instabilities in inertial confinement fusion implosions using an “enhanced self-emission” technique at the National Ignition Facility

24. Examining the radiation drive asymmetries present in the high foot series of implosion experiments at the National Ignition Facility

25. The role of hot spot mix in the low-foot and high-foot implosions on the NIF

26. Symmetry control of an indirectly driven high-density-carbon implosion at high convergence and high velocity

27. The relationship between gas fill density and hohlraum drive performance at the National Ignition Facility

28. Observation of hohlraum-wall motion with spectrally selective x-ray imaging at the National Ignition Facility

29. The size and structure of the laser entrance hole in gas-filled hohlraums at the National Ignition Facility

30. Laser absorption, power transfer, and radiation symmetry during the first shock of inertial confinement fusion gas-filled hohlraum experiments

31. Using multiple secondary fusion products to evaluate fuel ρR, electron temperature, and mix in deuterium-filled implosions at the NIF

32. Cryogenic tritium-hydrogen-deuterium and deuterium-tritium layer implosions with high density carbon ablators in near-vacuum hohlraums

33. Near-vacuum hohlraums for driving fusion implosions with high density carbon ablatorsa)

34. Tent-induced perturbations on areal density of implosions at the National Ignition Facilitya)

35. In-flight observations of low-mode ρR asymmetries in NIF implosions

36. Investigation of ion kinetic effects in direct-drive exploding-pusher implosions at the NIF

37. Erratum: “Review of the National Ignition Campaign 2009-2012” [Phys. Plasmas 21, 020501 (2014)]

38. The effect of shock dynamics on compressibility of ignition-scale National Ignition Facility implosions

39. Simulations of indirectly driven gas-filled capsules at the National Ignition Facility

40. High-density carbon ablator experiments on the National Ignition Facility

41. Nuclear imaging of the fuel assembly in ignition experiments

42. X-ray driven implosions at ignition relevant velocities on the National Ignition Facility

43. Hohlraum energetics scaling to 520 TW on the National Ignition Facility

44. Radiative shocks produced from spherical cryogenic implosions at the National Ignition Facility

45. Implosion dynamics measurements at the National Ignition Facility

46. Soft x-ray images of the laser entrance hole of ignition hohlraums

48. A high-resolution integrated model of the National Ignition Campaign cryogenic layered experiments

49. Cryogenic thermonuclear fuel implosions on the National Ignition Facility

50. X-ray conversion efficiency in vacuum hohlraum experiments at the National Ignition Facility

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