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1. The impact of low-mode symmetry on inertial fusion energy output in the burning plasma state

2. Experiments conducted in the burning plasma regime with inertial fusion implosions

3. Design of inertial fusion implosions reaching the burning plasma regime

4. Burning plasma achieved in inertial fusion

5. Raman backscatter as a remote laser power sensor in high-energy-density plasmas

6. Design of the first fusion experiment to achieve target energy gain G>1

7. Observations and properties of the first laboratory fusion experiment to exceed a target gain of unity

8. Publisher Correction: Burning plasma achieved in inertial fusion

9. Dynamics and Power Balance of Near Unity Target Gain Inertial Confinement Fusion Implosions

10. Control of low-mode drive asymmetry in an efficient long-pulse low gas-fill density Hohlraum

11. Optimization of Backscatter and Symmetry for Laser Fusion Experiments Using Multiple Tunable Wavelengths

12. Compensating cylindrical Hohlraum mode 4 asymmetry via capsule thickness tailoring and effects on implosions

13. Experimental achievement and signatures of ignition at the National Ignition Facility

14. Design of an inertial fusion experiment exceeding the Lawson criterion for ignition

15. Symmetric Inertial Confinement Fusion Implosions at Ultra-High Laser Energies

16. Investigation and modeling of optics damage in high-power laser systems caused by light backscattered in plasma at the target.

17. Observation of Hydrodynamic Flows in Imploding Fusion Plasmas on the National Ignition Facility

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

19. The first target experiments on the National Ignition Facility

21. Publisher's Note: “Fuel convergence sensitivity in indirect drive implosions” [Phys. Plasmas 28, 042705 (2021)]

22. Three dimensional low-mode areal-density non-uniformities in indirect-drive implosions at the National Ignition Facility

23. Fuel convergence sensitivity in indirect drive implosions

24. Interpolating individual line-of-sight neutron spectrometer measurements onto the “sky” at the National Ignition Facility (NIF)

25. Evidence of Three-Dimensional Asymmetries Seeded by High-Density Carbon-Ablator Nonuniformity in Experiments at the National Ignition Facility

26. Application of plasma optics to precision control of laser energy deposition in laser-fusion experiments

27. Application of cross-beam energy transfer to control drive symmetry in ICF implosions in low gas fill Hohlraums at the National Ignition Facility

30. Achieving 280 Gbar hot spot pressure in DT-layered CH capsule implosions at the National Ignition Facility

33. X-ray Laser Microscopy of Rat Sperm Nuclei

35. Review of hydrodynamic instability experiments in inertially confined fusion implosions on National Ignition Facility

36. Study of self-diffraction from laser generated plasma gratings in the nanosecond regime

39. Fusion Energy Output Greater than the Kinetic Energy of an Imploding Shell at the National Ignition Facility

40. A plasma amplifier to combine multiple beams at NIF

41. Wavelength-detuning cross-beam energy transfer mitigation scheme for direct drive: Modeling and evidence from National Ignition Facility implosions

42. The high velocity, high adiabat, “Bigfoot” campaign and tests of indirect-drive implosion scaling

43. Fusion Energy Output Greater than the Kinetic Energy of an Imploding Shell at the National Ignition Facility

44. First Observation of Cross-Beam Energy Transfer Mitigation for Direct-Drive Inertial Confinement Fusion Implosions Using Wavelength Detuning at the National Ignition Facility

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

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

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

48. Aluminum-coated optical fibers as efficient infrared timing fiducial photocathodes for synchronizing x-ray streak cameras.

49. Observation of soft x-ray amplification in neonlike molybdenum.

50. Design of first experiment to achieve fusion target gain 1

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