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1. Proton discrimination in CLYC for fast neutron spectroscopy

2. Absolute light yield of the EJ-204 plastic scintillator

3. New experimental constraint on the $^{185}$W($n,\gamma$)$^{186}$W cross section

4. Measurement of proton light yield of water-based liquid scintillator

5. Simultaneous measurement of organic scintillator response to carbon and proton recoils

6. Proton light yield of fast plastic scintillators for neutron imaging

7. Comparative scintillation performance of EJ-309, EJ-276, and a novel organic glass

8. Proton Light Yield in Organic Scintillators using a Double Time-of-Flight Technique

9. Neutron Spectroscopy for Pulsed Beams with Frame Overlap using a Double Time-of-Flight Technique

10. Scintillator light yield measurements with waveform digitizers

11. Low Energy Light Yield of Fast Plastic Scintillators

12. Restricted spin-range correction in the Oslo Method: The example of nuclear level density and $\gamma$-ray strength function from $^{239}\mathrm{Pu}(\mathrm{d,p}\gamma)^{240}\mathrm{Pu}$

13. Impact of restricted spin-ranges in the Oslo Method: The example of (d,p)$^{240}\mathrm{Pu}$

15. Energy dependence of the prompt ${\gamma}$-ray emission from the $(d,p)$-induced fission of $^{234}\mathrm{U}^{*}$ and $^{240}\mathrm{Pu}^{*}$

16. Impact of Restricted Spin-Ranges in the Oslo Method: The Example of (d,p)240Pu

17. Statistical properties of $^{243}$Pu, and $^{242}$Pu(n,$\gamma$) cross section calculation

18. 88-Inch Cyclotron: The One-Stop Facility for Electronics Radiation Testing

19. PANDA-FES: Portable and Adaptable Neutron Diagnostics for Advancing Fusion Energy Science

20. New experimental constraint on the W185(n,γ)W186 cross section

21. Impact of Restricted Spin-Ranges in the Oslo Method: The Example of (d,p)240Pu

22. Proton light yield in organic scintillators using a double time-of-flight technique.

23. Preliminary Status Report of Neutron Radiation Effects and Damage to Neutron Imaging System Equipment at Lawrence Livermore National Laboratory

28. Publisher's Note: Statistical properties of Pu243 , and Pu242(n,γ) cross section calculation [Phys. Rev. C 93 , 014323 (2016)]

29. Restricted spin-range correction in the Oslo method: The example of nuclear level density and γ -ray strength function from Pu239(d,pγ)Pu240

30. Energy dependence of the prompt γ -ray emission from the (d,p) -induced fission of U ∗ 234 and Pu ∗ 240

31. 88-Inch Cyclotron: The one-stop facility for electronics radiation testing

32. Statistical properties of $^{243}$Pu, and $^{242}$Pu(n,$\gamma$) cross section calculation

33. Energy dependence of the promptγ-ray emission from the(d,p)-induced fission ofU*234andPu*240

34. 88-Inch Cyclotron: The one-stop facility for electronics radiation testing

35. Magnetic moment and lifetime measurements of Coulomb-excited states inCd106

36. Z=50core stability inSn110from magnetic-moment and lifetime measurements

37. Statistical properties ofPu243, andPu242(n,γ)cross section calculation

38. Statistical properties of 243Pu, and 242Pu(n,γ) cross section calculation.

39. Nuclear resonance fluorescence in240Pu

40. Nuclear resonance fluorescence in 240Pu.

41. Restricted spin-range correction in the Oslo method: The example of nuclear level density and γ -ray strength function from Pu 239 ( d , p γ ) Pu 240

43. Statistical properties of Pu 243 , and Pu 242 ( n , γ ) cross section calculation

44. Restricted spin-range correction in the Oslo method: The example of nuclear level density and γ-ray strength function from 239Pu(d, pγ) 240Pu.

45. Energy dependence of the prompt γ-ray emission from the (d,p)-induced fission of 234U* and 240Pu*.

46. Magnetic moment and lifetime measurements of Coulomb-excited states in 106Cd.

47. Z=50 core stability in 110Sn from magnetic-moment and lifetime measurements.

48. The 40 Ar(d,p) 41 Ar cross section between 3-7 MeV.

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