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1. Flexible algorithms for background suppression in heavy ion induced nuclear reactions

2. Study of the properties of the superheavy nuclei Z = 117 produced in the 249Bk + 48Ca reaction

3. The superheavy nuclei: Fusion-evaporation reactions.

4. Were the Superheavy Elements made in Space?

6. Uncovering chemical homology of superheavy elements: a close look at astatine.

7. GRAND Universal Gas-Filled Separator: First Experimental Results.

9. Erratum to: Study of the 242Pu + 48Ca Reaction at Super Heavy Element Factory.

10. Science brings nations together: Mary Good and the heaviest atoms and nuclei.

11. Simulated and Experimental Characteristics of a Gas-Filled Recoil Separator DGFRS-2.

12. Study of the 242Pu + 48Ca Reaction at Super Heavy Element Factory.

13. First Experiment at the Super Heavy Element Factory: New Data from the 243Am + 48Ca Reaction.

15. Estimates of the Energies of the , , and -States in Heavy and Superheavy Nuclei.

16. Progress on production cross-sections of unknown nuclei in fusion evaporation reactions and multinucleon transfer reactions.

17. Flexible Scenario for Background Suppression in Heavy Element Research.

18. Role of optimal beam energies in the heavy ion fusion reaction.

19. Superheavy nuclei IX: 1300 ≤ A < 1400 systems.

21. On the discovery of new elements (IUPAC/IUPAP Report): Report of the 2017 Joint Working Group of IUPAC and IUPAP.

22. Superheavy nuclei VIII: 1200 ≤A< 1300 systems.

23. Synthesizing and Studying Superheavy Nuclei 294Ts and 294Og.

25. Low-Background Techniques in Nuclear Physics.

26. On the discovery of new elements (IUPAC/IUPAP Provisional Report): Provisional Report of the 2017 Joint Working Group of IUPAC and IUPAP.

27. Superheavy nuclei VII: 1100 ≤ A < 1200 systems.

28. Candidate potential for studies of A ≥ 1200 superheavy nuclei.

29. Superheavy nuclei VI: 1000 ≤ A <1100 systems.

30. Durability of targets and foils irradiated by intense heavy ion beams in experiments on synthesis of superheavy nuclei.

31. Spontaneous fission properties of superheavy elements.

32. Superheavy nuclei V: 900 ≤ A<1000 systems.

33. Superheavy nuclei IV: 800 ≤ A < 900 systems.

34. Names and symbols of the elements with atomic numbers 113, 115, 117 and 118 (IUPAC Recommendations 2016).

35. New trends in the development of 'active correlations' technique.

36. Discovery of the element with atomic number Z = 118 completing the 7th row of the periodic table (IUPAC Technical Report).

37. Discovery of the elements with atomic numbers Z = 113, 115 and 117 (IUPAC Technical Report).

39. Discovery of the element with atomic number Z = 118 completing the 7th row of the periodic table (IUPAC Technical Report).

40. Discovery of the elements with atomic numbers Z = 113, 115 and 117 (IUPAC Technical Report).

41. Bounding potential for studies of A ≥ 800 superheavy nuclei.

42. NEW RESULTS FOR ELEMENTS 115, 117, AND 118 PRODUCED IN THE REACTIONS 243Am+48Ca AND 249Bk/249Cf+48Ca.

43. Experimental tests of the modernized VASSILISSA separator (SHELS) with the use of accelerated Ti ions.

44. Superheavy nuclei III: 700 ≤ A < 800 systems.

45. Superheavy nuclei III: 700 ≤ A<800 systems.

46. Probable cluster decays from 270-318118 superheavy nuclei.

47. 2013 update of the discoveries of nuclides.

48. Superheavy nuclei II: 620< A<700 systems.

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