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1. Impact of the Turbulent Vertical Mixing on Chemical and Cloud Species in the Venus Cloud Layer

2. Sulfur monoxide dimer chemistry as a possible source of polysulfur in the upper atmosphere of Venus

3. Magma Ocean, Water, and the Early Atmosphere of Venus

4. Characterisation of the sensitivity to bias using a gain matrix formulation for the VeSUV/VenSpec-U instrument onboard ESA’s EnVision mission

5. EnVision: a Nominal Science Phase Spanning Six Venus Sidereal Days

6. No detection of methane on Mars from early ExoMars Trace Gas Orbiter observations

7. Consolidating the radiative transfer code to analyze VenSpec-H measurements

8. EnVision: understanding why our closest neighbour is so different

9. VenSpec-H: Introduction to Instrument and Consortium

10. Escape of moderately volatile elements from protoplanets and its potential effect on habitability

11. Interior structure and possible existence of irradiated ocean planets

12. Minor species measurements below the clouds of Venus using VIRTIS-H/Venus Express data set

13. The EnVision Mission to Venus

14. Ariel: Enabling planetary science across light-years

15. Observability of temperate exoplanets with Ariel

16. Modeling the structure of irradiated ocean planets - implications for mass-radius relationships

17. HST WFC3 G141 data analysis: exploring the transition from Super-Earth to Sub-Neptune

18. Detecting Venus’ volcanic gas plumes with VenSpec-H

19. Turbulent vertical mixing of H2O and SO2 in the Venus cloud layer

20. Io’s dry body shaped by atmospheric instability

21. Mass-Radius relationships of small, highly irradiated exoplanets with small water mass fractions

22. Characterising the interior structures and atmospheres of multiplanetary systems

23. Mass–Radius Relationships for Irradiated Ocean Planets

24. Evidence for SO2 latitudinal variations below the clouds of Venus

25. The Need for Ground-Based Observations of Venus

26. Instrumental requirements for the study of Venus’ cloud top using the UV imaging spectrometer VeSUV

28. Future Exploration of Venus: International Coordination and Collaborations

29. The Spatial and Temporal Distribution of Nighttime Ozone and Sulfur Dioxide in the Venus Mesosphere as Deduced from SPICAV UV Stellar Occultations

31. ARES IV: Probing the Atmospheres of the Two Warm Small Planets HD 106315c and HD 3167c with the HST/WFC3 Camera

32. Planetary system LHS 1140 revisited with ESPRESSO and TESS

33. Are sub-Neptunes irradiated ocean planets?

34. The Venus Emissivity Mapper – Obtaining Global Mineralogy of Venus from Orbit on the ESA EnVision and NASA VERITAS missions to Venus

35. A self-consistent thermodynamic approach to compute the interiors of irradiated ocean planets

36. Monitoring Venus cloud top: the VenSpec-U spectrometer on board ESA EnVision

37. The science goals of the EnVision Venus orbiter mission

38. Irradiated ocean planets bridge super-Earth and sub-Neptune populations

39. HDO and SO2 thermal mapping on Venus

40. Escape of rock-forming volatile elements and noble gases from planetary embryos

41. On Venus' cloud top chemistry, convective activity and topography: A perspective from HST

42. A stringent upper limit on the PH3 abundance at the cloud top of Venus

43. Climatology of SO2 and UV absorber at Venus’ cloud top from SPICAV-UV nadir dataset

44. The relative influence of H2O and CO2on the primitive surface conditions and evolution of rocky planets

45. Thermal radiation of magma ocean planets using a 1-D radiative-convective model of H2 O-CO2 atmospheres

46. Modeling the albedo of Earth-like magma ocean planets with H2O-CO2 atmospheres

47. Discovery of cloud top ozone on Venus

48. HDO and SO2 thermal mapping on Venus. IV. Statistical analysis of the SO2 plumes

49. Characterisation of the hydrospheres of TRAPPIST-1 planets

50. Influence of Venus topography on the zonal wind and UV albedo at cloud top level: The role of stationary gravity waves

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