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51. Experimental room temperature hohlraum performance study on the National Ignition Facility

52. Experimental results of radiation-driven, layered deuterium-tritium implosions with adiabat-shaped drives at the National Ignition Facility

53. Performance of indirectly driven capsule implosions on NIF using adiabat-shaping

54. Performance of indirectly driven capsule implosions on the National Ignition Facility using adiabat-shaping

55. Laser-Plasma Interactions in Drive Campaign targets on the National Ignition Facility

56. Hydrodynamic instabilities and mix studies on NIF: predictions, observations, and a path forward

57. Damage Mechanisms Avoided or Managed for NIF Large Optics

58. Overview: Development of the National Ignition Facility and the Transition to a User Facility for the Ignition Campaign and High Energy Density Scientific Research

59. Description of the NIF Laser

60. Optics Recycle Loop Strategy for NIF Operations above UV Laser-Induced Damage Threshold

61. Thin Shell, High Velocity Inertial Confinement Fusion Implosions on the National Ignition Facility

62. Improved Performance of High Areal Density Indirect Drive Implosions at the National Ignition Facility using a Four-Shock Adiabat Shaped Drive

63. Improved Performance of High Areal Density Indirect Drive Implosions at the National Ignition Facility using a Four-Shock Adiabat Shaped Drive

64. First results of radiation-driven, layered deuterium-tritium implosions with a 3-shock adiabat-shaped drive at the National Ignition Facility

65. Polar-direct-drive experiments on the National Ignition Facilitya)

66. Adiabat-shaping in indirect drive inertial confinement fusion

67. Thin Shell, High Velocity Inertial Confinement Fusion Implosions on the National Ignition Facility

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

69. Early time implosion symmetry from two-axis shock-timing measurements on indirect drive NIF experiments

70. Progress in hohlraum physics for the National Ignition Facility

72. Early-Time Symmetry Tuning in the Presence of Cross-Beam Energy Transfer in ICF Experiments on the National Ignition Facility

73. Progress toward ignition at the National Ignition Facility

74. Performance of High-Convergence, Layered DT Implosions with Extended-Duration Pulses at the National Ignition Facility

75. Onset of Hydrodynamic Mix in High-Velocity, Highly Compressed Inertial Confinement Fusion Implosions

76. Raman Backscatter as a Remote Laser Power Sensor in High-Energy-Density Plasmas

77. Progress towards ignition on the National Ignition Facility

78. Nuclear imaging of the fuel assembly in ignition experiments

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

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

81. The effect of laser pulse shape variations on the adiabat of NIF capsule implosions

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

83. NIF Ignition Campaign Target Performance and Requirements: Status May 2012

84. Achieving full 1.8 MJ, 500 TW laser performance on the National Ignition Facility

85. Implosion dynamics measurements at the National Ignition Facility

86. Progress in the indirect-drive National Ignition Campaign

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

88. Assembly of High-Areal-Density Deuterium-Tritium Fuel from Indirectly Driven Cryogenic Implosions

89. Precision Shock Tuning on the National Ignition Facility

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

91. Cryogenic thermonuclear fuel implosions on the National Ignition Facility

92. The velocity campaign for ignition on NIF

93. Shock timing experiments on the National Ignition Facility: Initial results and comparison with simulation

94. Direct Measurement of Energetic Electrons Coupling to an Imploding Low-Adiabat Inertial Confinement Fusion Capsule

95. Multistep redirection by cross-beam power transfer of ultrahigh-power lasers in a plasma

96. Plasma-based beam combiner for very high fluence and energy

97. Point design targets, specifications, and requirements for the 2010 ignition campaign on the National Ignition Facility

98. Capsule implosion optimization during the indirect-drive National Ignition Campaign

99. Multi-beam effects on backscatter and its saturation in experiments with conditions relevant to ignition

100. The experimental plan for cryogenic layered target implosions on the National Ignition Facility—The inertial confinement approach to fusion

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