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Fitton et al. 1991
Fitton, J.G., James, D. and Leeman, W.P. (1991). Basic magmatism associated with late Cenozoic extension in the western United States: Compositional variations in space and time. Journal of Geophysical Research 96: doi: 10.1029/91JB00372. issn: 0148-0227.

Widespread basic magmatism across much of the western United States in the late Cenozoic followed the cessation of subduction along the Pacific coast. This volcanism accompanied lithospheric extension, block faulting, and regional uplift. In an attempt to assess the relative contribution of asthenosphere and mantle lithosphere to magmas across the western United States we have analzed, for major and trace elements, a suite of 750 basic (MgO>4%) lava samples from all the major volcanic fields in the region. The data were divided into seven sets representing the main tectonomagmatic provinces: Basin and Range (BR), Western Great Basin, Transition Zone (TZ), Colorado Plateau, Snake River Plain, Southern Rocky Mountains, and Great Plains. It was further divided into relatively recent (5 Ma) subsets on the basis of field relations and K-Ar data. The 5 Ma) subset shows no great differences between the BR and the other tectonomagmatic provinces; all have high La/Nb and Ba/Nb.

Crustal contamination alone cannot be responsible for these variations. We conclude that many of the magmas have inherited their chemical and isotopic characteristics from a lithospheric mantle source enriched by fluids expelled from a subducted slab. Pelagic sediment, returned to the mantle by subduction, is a possible agent for fluids rich in Ba, radiogenic Sr, and unradiogenic Nd, but very poor in Nb. At least some of this enrichment must have accompanied the formation of the Proterozoic crust. It appears that subduction-enriched lightospheric mantle was involved in the generation of all extension-related basic magmas across the western United States until relatively recently. Only in the younger BR and parts of the TZ have asthenopshere-derived magmas, uncontaminated by lithosphere, reached the surface. These observations conflict with models in which uplift and extension are caused by the replacement of mantle lithosphere by asthenosphere. They are best explained by the progressive erosion of the lithopsheric mantle over a plume currently located beneath the Southern Rocky Mountains. ¿American Geophysical Union 1991

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Abstract

Keywords
Mineralogy and Petrology, Igneous petrology, Mineralogy and Petrology, Minor and trace element composition, Geochemistry, Composition of the core, Geochemistry, Composition of the mantle, Tectonophysics, Dynamics of lithosphere and mantle—general
Journal
Journal of Geophysical Research
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American Geophysical Union
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