Mono Lake thinolite ages and their implications for the...

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Mono Lake thinolite ages and their implications for the regional δ 18 O chronology LeRoy, S.L. 1 , Guilderson, T.P. 2 , Zimmerman, S.H. 2 , Hemming, S.R. 3 1 Department of Chemistry and Physics, Mills College, 5000 MacArthur Blvd., Oakland, CA 94613, United States, 2 Center for Accelerator Mass Spectrometry, Lawrence Livermore Natl. Laboratory, P.O. Box 808 L- 397, Livermore, CA 94550, United States, 3 Lamont-Doherty Earth Observatory, Columbia University, Rt. 9W, Palisades, NY 10964-0190, United States

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Mono Lake thinolite ages and their implications for the regional

δ18O chronology

LeRoy, S.L.1, Guilderson, T.P.2, Zimmerman, S.H.2, Hemming, S.R.3

1Department of Chemistry and Physics, Mills College, 5000 MacArthur Blvd., Oakland, CA 94613, United States, 2Center for Accelerator Mass Spectrometry, Lawrence Livermore Natl. Laboratory, P.O. Box 808 L-397, Livermore, CA 94550, United States, 3Lamont-Doherty Earth Observatory, Columbia University, Rt.

9W, Palisades, NY 10964-0190, United States

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Thinolite

• Thinolite, made of CaCO3, is a pseudo-morph of ikaite

• Ikaite forms only at low temperatures and under specific water chemistry

E.S. Dana

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Research Questions

• How old are thinolite samples collected from Mono Basin?

• Do the dates of our samples correlate with colder time periods described in the GISP2 ice core?

• Does the correlation between GISP2 and thinolite ages reveal controls on the Mono Lake δ18O curve?

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Google Earth

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Non-thinolite

Non-thinolite

Thinolite

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Methods

• 80% pretreatment leach

• Sample dissolved using phosphoric acid, evolved gas reduced to graphite

• Graphite analyzed by accelerator mass spectrometer

Courtesy of LLNL

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14C Results: thinolite and non-thinolite ages

MV2-1 15650 ±160 18671 - 18948MV2-9 15620 ±160 18662 - 18918M09 GR 6 13000 ±110 15247 - 15873

MV2-3 20550 ±310 24193 - 24930MV2-10 30060 ±1040 33260 - 35535

Sample ID 14C Age (BP) Cal. Age (BP)

Thinolites

Non-Thinolites

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GISP2 δ18OWarmer

Colder

Thinolite Non-thinolite

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Observations: GISP2 δ18O

• Based on Greenland ice core

• Provides temperature proxy

• Thinolite ages correlate with colder periods described by GISP2 δ18O curve

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Mono Lake δ18OThinolite Non-thinolite

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Observations: Mono Lake δ18O

• Based on bulk sediment carbonates

• Thinolites correlate with less positive δ18O values

• During Last Glacial Maximum δ18O values vary by ~7‰, suggesting control of Mono δ18O is more than temperature

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Discussion: parameters of Mono Lake δ18O values

More positive value may indicate:

More negative value may indicate:

•Colder •Warmer•More evaporation •Less evaporation•Precipitation source mostly Gulf of Mexico

•Precipitation source mostly Pacific

•Less runoff from glaciers •More runoff from glaciers

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Discussion & Conclusion

• GISP2 and Mono Lake δ18O behave similarly during the last 30,000 years

• Thinolite ages correlate to Younger Dryas and Last Glacial Maximum

• Thinolite ages represent minimum number of cold periods

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Acknowledgments

This work was made possible thanks to the generosity of Paula Zerme�ño, Scott Stine, Gary Hemming, CAMS staff and Guleed Ali.

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Discussion: thinolite dating dilemma

• Reservoir effect of lake and spring water