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1. Decomposition of physical processes controlling EASM precipitation changes during the mid-Piacenzian: new insights into data–model integration

2. Alpine permafrost could account for a quarter of thawed carbon based on Plio-Pleistocene paleoclimate analogue

3. Revisiting the physical processes controlling the tropical atmospheric circulation changes during the Mid-Piacenzian Warm Period

5. Mid-Pliocene El Niño/Southern Oscillation suppressed by Pacific intertropical convergence zone shift

6. 20,000 years of societal vulnerability and adaptation to climate change in southwest Asia

7. Past terrestrial hydroclimate sensitivity controlled by Earth system feedbacks

8. Amplified seasonality in western Europe in a warmer world

10. Amplified seasonality in western Europe in a warmer world

11. Amplified seasonality in western Europe in a warmer world

12. Highly stratified mid-Pliocene Southern Ocean in PlioMIP2

13. Highly stratified mid-Pliocene Southern Ocean in PlioMIP2

14. Revisiting the physical processes controlling the tropical atmospheric circulation changes during the Mid-Piacenzian Warm Period

15. Highly stratified mid-Pliocene Southern Ocean in PlioMIP2

19. Amplified seasonality in western Europe in a warmer world

20. Supplementary material to "Highly stratified mid-Pliocene Southern Ocean in PlioMIP2"

21. Highly stratified mid-Pliocene Southern Ocean in PlioMIP2

22. The hydrological cycle and ocean circulation of the Maritime Continent in the Pliocene: results from PlioMIP2

26. The role of atmospheric CO2 in controlling sea surface temperature change during the Pliocene.

27. Highly stratified mid-Pliocene Southern Ocean in PlioMIP2.

31. The hydrological cycle and ocean circulation of the Maritime Continent in the Pliocene : results from PlioMIP2

32. Unraveling the mechanisms and implications of a stronger mid-Pliocene Atlantic Meridional Overturning Circulation (AMOC) in PlioMIP2

33. Unraveling the mechanisms and implications of a stronger mid-Pliocene Atlantic Meridional Overturning Circulation (AMOC) in PlioMIP2

34. Unraveling the mechanisms and implications of a stronger mid-Pliocene Atlantic Meridional Overturning Circulation (AMOC) in PlioMIP2

35. On the climatic influence of CO2 forcing in the Pliocene

36. The hydrological cycle and ocean circulation of the Maritime Continent in the Pliocene: results from PlioMIP2

37. Climate and atmospheric circulation during the Early and Mid-Holocene inferred from lake-carbonate oxygen-isotope records from western Ireland.

40. On the climatic influence of CO2 forcing in the Pliocene

43. Simulating marine neodymium isotope distributions using Nd v1.0 coupled to the ocean component of the FAMOUS–MOSES1 climate model: sensitivities to reversible scavenging efficiency and benthic source distributions

45. Unraveling the mechanisms and implications of a stronger mid-Pliocene Atlantic Meridional Overturning Circulation (AMOC) in PlioMIP2

46. Pliocene Model Intercomparison Project Phase 3 (Pliomip3) – Science Plan and Experimental Design

48. The role of atmospheric CO2 in controlling patterns of sea surface temperature change during the Pliocene.

49. Highly stratified mid-Pliocene Southern Ocean in PlioMIP2.

50. Supplementary material to "The hydrological cycle and ocean circulation of the Maritime Continent in the mid-Pliocene: results from PlioMIP2"

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