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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
Paleogene topographic and climatic evolution of the Northern Rocky Mountains from integrated sedimentary and isotopic data Available to Purchase
Warm and cold wet states in the western United States during the Pliocene–Pleistocene Available to Purchase
The Neogene de-greening of Central Asia Available to Purchase
A hot and high Eocene Sierra Nevada Available to Purchase
Mid-latitude terrestrial climate of East Asia linked to global climate in the Late Cretaceous: REPLY Open Access
Mid-latitude terrestrial climate of East Asia linked to global climate in the Late Cretaceous Available to Purchase
Discovery of ultrahigh-temperature metamorphism in the Acadian orogen, Connecticut, USA Available to Purchase
Early Cenozoic topography, morphology, and tectonics of the northern Sierra Nevada and western Basin and Range Open Access
Cenozoic migration of topography in the North American Cordillera Available to Purchase
Geomorphic controls on lacustrine isotopic compositions: Evidence from the Laney Member, Green River Formation, Wyoming Available to Purchase
Cenozoic tectonic and topographic evolution of the northern Sierra Nevada, California, through stable isotope paleoaltimetry in volcanic glass Available to Purchase
Constraints on the metamorphic evolution of the eastern Himalayan syntaxis from geochronologic and petrologic studies of Namche Barwa Available to Purchase
Paleogene landscape evolution of the central North American Cordillera: Developing topography and hydrology in the Laramide foreland Available to Purchase
Capture of high-altitude precipitation by a low-altitude Eocene lake, western U.S. Available to Purchase
Stable Isotope Paleoaltimetry in Orogenic Belts – The Silicate Record in Surface and Crustal Geological Archives Available to Purchase
Stable isotopic evidence for Neogene surface downdrop in the central Basin and Range Province Available to Purchase
Stable isotopic evidence for a pre–late Miocene elevation gradient in the Great Plains–Rocky Mountain region, USA Available to Purchase
In order to investigate if high elevations existed in the Rocky Mountains before the late Miocene, we examined oxygen isotope ratios of 63 Tertiary smectite samples as a proxy for the isotopic composition of precipitation. Of these samples, 51 were also analyzed for hydrogen isotope ratios. These smectites were formed as a result of the weathering of volcanic air-fall deposits that blanketed much of western North America during the Tertiary. Smectite-bearing ashfall samples were collected from Eocene, Oligocene, and Miocene deposits along a transect that extends from the western Great Plains to Yellowstone National Park at modern elevations from ∼900 to ∼2800 m. In general, oxygen and hydrogen δ values of smectite lie along a line parallel to the meteoric water line, which suggests that the isotopic composition of these ash-derived smectites records the meteoric water composition during its formation. There is little evidence for postdepositional exchange with basinal brine fluids, evaporative effects, or diagenesis of these smectites. The δ 18 O values of Oligocene and Miocene samples increase ∼6‰ linearly from sample sites located at the crest of the Rocky Mountains to sites in western Nebraska and South Dakota. These results mimic the distribution and values of calculated oxygen isotope ratios of theoretical modern smectite over this same geographic traverse of decreasing elevation. This result suggests modern atmospheric circulation patterns and that the resulting distribution of δ 18 O precipitation has persisted since the Oligocene. The δ 18 O values of Eocene samples increase ∼8‰ between the Yellowstone region and central Wyoming, a result that does not correlate with modern δ 18 O precipitation trends. Our Eocene results may be explained by climate conditions extant at that time, but tectonic modification in the region between 50 Ma and 37 Ma cannot be excluded as the cause of our results. Because the modern climate system requires interaction with and modification by high-elevation areas, our results suggest that the Rocky Mountains have been at high elevation since at least 50 Ma.