4.7 Article

Holocene glacier culminations in the Western Alps and their hemispheric relevance

Journal

GEOLOGY
Volume 40, Issue 10, Pages 891-894

Publisher

GEOLOGICAL SOC AMER, INC
DOI: 10.1130/G33169.1

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Funding

  1. CRONUS-Earth project (Cosmic-Ray Produced Nuclide Systematics on Earth) (U.S. National Science Foundation) [EAR-0345835]
  2. International Balzan Foundation
  3. German Academic Exchange Service (DAAD)

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The natural variability of Holocene climate defines the baseline to assess ongoing climate change. Greenland ice-core records indicate warming superimposed by abrupt climate oscillations in the early Holocene, followed by a general cooling trend throughout the middle and late Holocene that culminated during the Little Ice Age (LIA). Tropical precipitation changes correlate with these patterns throughout the Holocene. Here we use mountain glaciers in the European Alps to reconstruct the regional Holocene climate evolution and to test for a link between mid-latitude, North Atlantic, and tropical climate. Our precise Be-10 chronology from Tsidjiore Nouve Glacier, western Swiss Alps, indicates a glacier culmination during the earliest Holocene similar to 11.4 k.y. ago, likely related to the Preboreal Oscillation. Based on our data, no Holocene glacier advance of similar amplitude occurred until similar to 3.8 k.y. ago, when the glacier reached LIA limits. The Be-10 ages between 500 and 170 yr correspond to the LIA, while the youngest Be-10 ages overlap with the historically recorded post-LIA glacier positions. Integrating our data with existing records, we propose a hemispheric climate link between the Alps, North Atlantic temperature, and tropical precipitation patterns for the Holocene, supporting the concept of a pervasive climate driver. These findings from northern mid-latitudes are consistent with the hypothesis formulated for the tropics that the Earth's thermal equator, responding to North Atlantic temperature changes, might have migrated southward throughout the Holocene, reaching the southern turning point toward the end of the LIA.

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