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

2. Evidence for suprathermal ion distribution in burning plasmas

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

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

5. Burning plasma achieved in inertial fusion

6. The first cryogenic DT layered, beryllium capsule implosion at the National Ignition Facility

7. What next: Further implosion space exploration on the path to NIF extended yield capability.

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

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

10. Effect of Laser-Plasma Interactions on Inertial Fusion Hydrodynamics

11. Publisher Correction: Burning plasma achieved in inertial fusion

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

13. Evidence for suprathermal ion distribution in burning plasmas

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

15. Yield degradation mechanisms for two-shock capsules evaluated through simulations

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

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

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

19. Record Energetics for an Inertial Fusion Implosion at NIF

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

21. Measurements of enhanced performance in an indirect drive inertial confinement fusion experiment when reducing the contact area of the capsule support

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

23. Stimulated Raman scattering mechanisms and scaling behavior in planar direct-drive experiments at the National Ignition Facility

25. X-ray sources using a picosecond laser driven plasma accelerator

26. Implosion performance of subscale beryllium capsules on the NIF

27. Beryllium capsule implosions at a case-to-capsule ratio of 3.7 on the National Ignition Facility

28. Using a 2-shock 1D platform at NIF to measure the effect of convergence on mix and symmetry

29. A “polar contact” tent for reduced perturbation and improved performance of NIF ignition capsules

30. The influence of hohlraum dynamics on implosion symmetry in indirect drive inertial confinement fusion experiments

31. A near one-dimensional indirectly driven implosion at convergence ratio 30

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

33. Betatron x-ray radiation from laser-plasma accelerators driven by femtosecond and picosecond laser systems

34. Measuring the shock impedance mismatch between high-density carbon and deuterium at the National Ignition Facility

35. Origins and Scaling of Hot-Electron Preheat in Ignition-Scale Direct-Drive Inertial Confinement Fusion Experiments

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

37. Performance of beryllium targets with full-scale capsules in low-fill 6.72-mm hohlraums on the National Ignition Facility

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

39. Observation of Betatron X-Ray Radiation in a Self-Modulated Laser Wakefield Accelerator Driven with Picosecond Laser Pulses

40. Publisher’s Note: Development of improved radiation drive environment for high foot implosions at the National Ignition Facility [Phys. Rev. Lett. 117 , 225002 (2016)]

42. Applications and results of X-ray spectroscopy in implosion experiments on the National Ignition Facility

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

44. Development of Improved Radiation Drive Environment for High Foot Implosions at the National Ignition Facility

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

48. Indications of flow near maximum compression in layered deuterium-tritium implosions at the National Ignition Facility

49. NIF Rugby High Foot Campaign from the design side

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

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