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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

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

5. Burning plasma achieved in inertial fusion

6. Development of improved higher-order correction for the NIF opacity spectrometer.

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

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

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

11. Yield and compression trends and reproducibility at NIF*

13. Correlations between asymmetric compression, burn amplification, and hot-spot velocities in inertial confinement fusion implosions

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

15. Hot electron preheat in hydrodynamically scaled direct-drive inertial confinement fusion implosions on the NIF and OMEGA

16. Publisher Correction: Burning plasma achieved in inertial fusion

17. FY20 LLNL Experimental Programs at Omega

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

19. Alpha heating of indirect-drive layered implosions on the National Ignition Facility

20. A direct-drive exploding-pusher implosion as the first step in development of a monoenergetic charged-particle backlighting platform at the National Ignition Facility

22. FY19 LLNL Experimental Programs at Omega

23. Hot-electron preheat and mitigation in polar-direct-drive experiments at the National Ignition Facility

24. X-ray source characterization and sample heating on x-ray diffraction experiments at the National Ignition Facility

25. Development of an x-ray radiography platform to study laser-direct-drive energy coupling at the National Ignition Facility

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

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

29. Role of hot electrons in shock ignition constrained by experiment at the National Ignition Facility

30. Hydroscaling indirect-drive implosions on the National Ignition Facility

32. Lawson Criterion for Ignition Exceeded in an Inertial Fusion Experiment

33. Direct-drive implosion physics: Results from OMEGA and the National Ignition Facility

38. Achieving record hot spot energies with large HDC implosions on NIF in HYBRID-E

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

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

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

42. Record Energetics for an Inertial Fusion Implosion at NIF

44. Deficiencies in compression and yield in x-ray-driven implosions

45. Principal factors in performance of indirect-drive laser fusion experiments

46. Integrated performance of large HDC-capsule implosions on the National Ignition Facility

47. Experiments to explore the influence of pulse shaping at the National Ignition Facility

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

49. Hot-spot mix in large-scale HDC implosions at NIF

50. Hotspot parameter scaling with velocity and yield for high-adiabat layered implosions at the National Ignition Facility

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