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101. X-ray drive of beryllium capsule implosions at the National Ignition Facility

102. First beryllium capsule implosions on the National Ignition Facility

103. Integrated modeling of cryogenic layered highfoot experiments at the NIF

104. Symmetry control in subscale near-vacuum hohlraums

105. Control of Be capsule low mode implosions symmetry at the National Ignition Facility

106. Simulations of fill tube effects on the implosion of high-foot NIF ignition capsules

108. The near vacuum hohlraum campaign at the NIF: A new approach

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

110. Inertially confined fusion plasmas dominated by alpha-particle self-heating

111. Three-dimensional simulations of low foot and high foot implosion experiments on the National Ignition Facility

112. Hydrodynamic growth and mix experiments at National Ignition Facility

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

114. Generation and Beaming of Early Hot Electrons onto the Capsule in Laser-Driven Ignition Hohlraums

115. Developing one-dimensional implosions for inertial confinement fusion science

116. Demonstration of High Performance in Layered Deuterium-Tritium Capsule Implosions in Uranium Hohlraums at the National Ignition Facility

117. Performance and Mix Measurements of Indirect Drive Cu-Doped Be Implosions

118. Optimized minimal inductance transmission line configuration for Z-pinch experiments.

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

121. Demonstration of High Performance in Layered Deuterium-Tritium Capsule Implosions in Uranium Hohlraums at the National Ignition Facility

122. Performance and Mix Measurements of Indirect Drive Cu-Doped Be Implosions

123. Higher velocity, high-foot implosions on the National Ignition Facility lasera)

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

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

127. Overview of Performance and Progress with Inertially Confined Fusion Implosions on the National Ignition Facility

128. Reduced instability growth with high-adiabat high-foot implosions at the National Ignition Facility

129. An in-flight radiography platform to measure hydrodynamic instability growth in inertial confinement fusion capsules at the National Ignition Facility

130. Erratum: Corrigendum: Fuel gain exceeding unity in an inertially confined fusion implosion

131. First Measurements of Hydrodynamic Instability Growth in Indirectly Driven Implosions at Ignition-Relevant Conditions on the National Ignition Facility

132. The high-foot implosion campaign on the National Ignition Facility

133. Hydrodynamic instability growth and mix experiments at the National Ignition Facility

134. High-Adiabat High-Foot Inertial Confinement Fusion Implosion Experiments on the National Ignition Facility

135. Design of a High-Foot High-Adiabat ICF Capsule for the National Ignition Facility

136. Update 2017 on Target Fabrication Requirements for High-Performance NIF Implosion Experiments

137. Progress toward ignition at the National Ignition Facility

138. Validation of a Turbulent Kelvin-Helmholtz Shear Layer Model Using a High-Energy-Density OMEGA Laser Experiment

139. Experimental observations of turbulent mixing due to Kelvin–Helmholtz instability on the OMEGA Laser Facility

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