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Dive into the research topics where Scott M. McLennan is active.

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Featured researches published by Scott M. McLennan.


Reviews of Geophysics | 1995

The geochemical evolution of the continental crust

Stuart Ross Taylor; Scott M. McLennan

A survey is given of the dimensions and composition of the present continental crust. The abundances of immobile elements in sedimentary rocks are used to establish upper crustal composition. The present upper crustal composition is attributed largely to intracrustal differentiation resulting in the production of granites senso lato. Underplating of the crust by ponded basaltic magmas is probably a major source of heat for intracrustal differentiation. The contrast between the present upper crustal composition and that of the Archean upper crust is emphasized. The nature of the lower crust is examined in the light of evidence from granulites and xenoliths of lower crustal origin. It appears that the protoliths of most granulite facies exposures are more representative of upper or middle crust and that the lower crust has a much more basic composition than the exposed upper crust. There is growing consensus that the crust grows episodically, and it is concluded that at least 60% of the crust was emplaced by the late Archean (ca. 2.7 eons, or 2.7 Ga). There appears to be a relationship between episodes of continental growth and differentiation and supercontinental cycles, probably dating back at least to the late Archean. However, such cycles do not explain the contrast in crustal compositions between Archean and post-Archean. Mechanisms for deriving the crust from the mantle are considered, including the role of present-day plate tectonics and subduction zones. It is concluded that a somewhat different tectonic regime operated in the Archean and was responsible for the growth of much of the continental crust. Archean tonalites and trond-hjemites may have resulted from slab melting and/or from melting of the Archean mantle wedge but at low pressures and high temperatures analogous to modern boninites. In contrast, most andesites and subduction-related rocks, now the main contributors to crustal growth, are derived ultimately from the mantle wedge above subduction zones. The cause of the contrast between the processes responsible for Archean and post-Archean crustal growth is attributed to faster subduction of younger, hotter oceanic crust in the Archean (ultimately due to higher heat flow) compared with subduction of older, cooler oceanic crust in more recent times. A brief survey of the causes of continental breakup reveals that neither plume nor lithospheric stretching is a totally satisfactory explanation. Speculations are presented about crustal development before 4000 m.y. ago. The terrestrial continental crust appears to be unique compared with crusts on other planets and satellites in the solar system, ultimately a consequence of the abundant free water on the Earth.


Science | 2004

In Situ Evidence for an Ancient Aqueous Environment at Meridiani Planum, Mars

Steven W. Squyres; John P. Grotzinger; Raymond E. Arvidson; James F. Bell; Wendy M. Calvin; Philip R. Christensen; Benton C. Clark; Jeffrey Crisp; William H. Farrand; K. E. Herkenhoff; Jeffrey R. Johnson; G. Klingelhöfer; Andrew H. Knoll; Scott M. McLennan; Harry Y. McSween; Richard V. Morris; John W. Rice; Renate Rieder; Larry Soderblom

Sedimentary rocks at Eagle crater in Meridiani Planum are composed of fine-grained siliciclastic materials derived from weathering of basaltic rocks, sulfate minerals (including magnesium sulfate and jarosite) that constitute several tens of percent of the rock by weight, and hematite. Cross-stratification observed in rock outcrops indicates eolian and aqueous transport. Diagenetic features include hematite-rich concretions and crystal-mold vugs. We interpret the rocks to be a mixture of chemical and siliciclastic sediments with a complex diagenetic history. The environmental conditions that they record include episodic inundation by shallow surface water, evaporation, and desiccation. The geologic record at Meridiani Planum suggests that conditions were suitable for biological activity for a period of time in martian history.


Geochimica et Cosmochimica Acta | 1990

Geochemical and NdSr isotopic composition of deep-sea turbidites: Crustal evolution and plate tectonic associations

Scott M. McLennan; Stuart Ross Taylor; Malcolm T. McCulloch; J.B. Maynard

Abstract Petrographic, geochemical, and isotopic data for turbidites from a variety of tectonic settings exhibit considerable variability that is related to tectonic association. Passive margin turbidites (Trailing Edge, Continental Collision) display high framework quartz (Q) content in sands, evolved major element compositions (high Si Al , K Na ), incompatible element enrichments (high Th Sc , La Sc , La Yb ), negative Eu-anomalies and variable Th U ratios. They have low 143 Nd 144 Nd and high 87 Sr 86 Sr (ϵNd = −26 to −10; 87 Sr 86 Sr = 0.709 to 0.734 ), indicating a dominance of old upper crustal sources. Active margin settings (Fore Arc, Continental Arc, Back Arc, Strike Slip) commonly exhibit quite different compositions. Th Sc varies from Eu Eu ∗ = 1.0 ) to Eu-depletions typical of post-Archean shales ( Eu Eu ∗ = 0.65 ). Active margin data are explained by mixtures of young arc-derived material, with variable composition and old upper crustal sources. Major element data indicate that passive margin turbidites have experienced more severe weathering histories than those from active settings. Most trace elements are enriched in muds relative to associated sands because of dilution effects from quartz and calcite and concentration of trace elements in clays. Exceptions include Zr, Hf (heavy mineral influence) and Tl (enriched in feldspar) which display enrichments in sands. Active margin sands commonly exhibit higher Eu Eu ∗ than associated muds, resulting from concentration of plagioclase during sorting. Some associated sands and muds, especially from active settings, have systematic differences in Th Sc ratios and Nd-isotopic composition, indicating that various provenance components may separate into different grain-size fractions during sedimentary sorting processes. Trace element abundances of modern turbidites, from both active and passive settings, differ from Archean turbidites in several important ways. Modern turbidites have less uniformity, for example, in Th Sc ratios. On average, modern turbidites have greater depletions in Eu (lower Eu Eu ∗ ) than do Archean turbidites, suggesting that the processes of intracrustal differentiation (involving plagioclase fractionation) are of greater importance for crustal evolution at modern continental margins than they were during the Archean. Modern turbidites do not display HREE depletion, a feature commonly seen in Archean data. HREE depletion ( Gd N Yb N > 2.0 ) in Archean sediments results from incorporation of felsic igneous rocks that were in equilibrium (or their sources were in equilibrium) with garnet sometime in their history. Absence of HREE depletion at modern continental margins suggests that processes of crust formation (or mantle source compositions) may have differed. Differences in trace element abundances for Archean and modern turbidites add support to suggestions that upper continental crust compositions and major processes responsible for continental crust differentiation differed during the Archean. Neodymium model ages, thought to approximate average provenance age, are highly variable (TDMND = 0–2.6 Ga) in modern turbidites, in contrast with studies that indicate Nd-model ages of lithified Phanerozoic sediment are fairly constant at about 1.5–2.0 Ga. This variability indicates that continental margin sediments incorporate new mantle-derived components, as well as continental crust of widely varying age, during recycling. The apparent dearth of ancient sediments with Nd-model age similar to stratigraphic age supports the suggestion that preservation potential of sediments is related to tectonic setting. Many samples from active settings have isotopic compositions similar to or only slightly evolved from mantle-derived igneous rocks. Subduction of active margin turbidites should be considered in models of crust-mantle recycling. For short-term recycling, such as that postulated for island arc petrogenesis, arc-derived turbidites cannot be easily recognized as a source component because of the lack of time available for isotopic evolution. If turbidites were incorporated into the sources of ocean island volcanics, the isotopic signatures would be considerably more evolved since most models call for long mantle storage times (1.0–2.0 Ga), prior to incorporation. Four provenance components are recognized on the basis of geochemistry and Nd-isotopic composition: 1. (1) Old Upper Continental Crust (old igneous/metamorphic terranes, recycled sediment); 2. (2) Young Undifferentiated Arc (young volcanic/plutonic source that has not experienced plagioclase fractionation); 3. (3) Young Differentiated Arc (young volcanic/plutonic source that has experienced plagioclase fractionation); 4. (4) MORB (minor). Relative proportions of these components are influenced by the plate tectonic association of the provenance and are typically (but not necessarily) reflected in the depositional basin. Provenance of quartzose (mainly passive settings) and non-quartzose (mainly active settings) turbidites can be characterized by bulk composition (e.g., Th Sc ) and Nd-isotopic composition (reflecting age).


The Journal of Geology | 1993

Weathering and Global Denudation

Scott M. McLennan

A negative correlation between sediment yield and weathering history, as measured by the chemical alteration (CIA) of the suspended sediment, is observed for many of the worlds major rivers and other regions of denudation. The weathering history is a first-order control on the sediment yield of such areas, termed equilibrium denudation regions. For other areas, data scatter with either apparent increases or decreases of sediment yield for given CIA values. These areas are termed nonequilibrium denudation regions. Low sediment yields can be attributed to moderated erosion (either natural or human induced) and/or the incorporation of unweathered glacial debris. Accelerated erosion, resulting in high sediment yield, is primarily human-induced and results from cultivation and other land use. Each of these effects has a profound influence on global sediment discharge from the continents. Pre-human suspended sediment discharge from the continents is estimated to be


Science | 2004

The Opportunity Rover's Athena science investigation at Meridiani Planum, Mars

Steven W. Squyres; Raymond E. Arvidson; James F. Bell; J. Brückner; Nathalie A. Cabrol; Wendy M. Calvin; Michael H. Carr; Philip R. Christensen; B. C. Clark; Larry S. Crumpler; D. J. Des Marais; C. d'Uston; Thanasis E. Economou; Jack D. Farmer; William H. Farrand; William M. Folkner; M. P. Golombek; S. Gorevan; Joshua A. Grant; Ronald Greeley; John P. Grotzinger; Larry A. Haskin; K. E. Herkenhoff; S. F. Hviid; James Richard Johnson; G. Klingelhöfer; Andrew H. Knoll; Geoffrey A. Landis; Mark T. Lemmon; R. Li


Science | 2014

A Habitable Fluvio-Lacustrine Environment at Yellowknife Bay, Gale Crater, Mars

John P. Grotzinger; Dawn Y. Sumner; L. C. Kah; K. Stack; S. Gupta; Lauren A. Edgar; David M. Rubin; Kevin W. Lewis; Juergen Schieber; N. Mangold; Ralph E. Milliken; P. G. Conrad; David J. DesMarais; Jack D. Farmer; K. L. Siebach; F. Calef; Joel A. Hurowitz; Scott M. McLennan; D. Ming; D. T. Vaniman; Joy A. Crisp; Ashwin R. Vasavada; Kenneth S. Edgett; M. C. Malin; D. Blake; R. Gellert; Paul R. Mahaffy; Roger C. Wiens; Sylvestre Maurice; J. A. Grant

12.6 \times 10^{15} g/yr


Nature | 2005

An integrated view of the chemistry and mineralogy of martian soils

Albert S. Yen; Ralf Gellert; C. Schröder; Richard V. Morris; James F. Bell; Amy T. Knudson; B. C. Clark; Douglas W. Ming; Joy A. Crisp; Raymond E. Arvidson; Diana L. Blaney; J. Brückner; Philip R. Christensen; D.J. DesMarais; P. A. de Souza; T.E. Economou; A. Ghosh; B.C. Hahn; K. E. Herkenhoff; L.A. Haskin; J.A. Hurowitz; Bradley L. Joliff; J. R. Johnson; G. Klingelhofer; M. B. Madsen; Scott M. McLennan; Harry Y. McSween; L. Richter; R. Rieder; D. Rodionov


Science | 2014

Mineralogy of a Mudstone at Yellowknife Bay, Gale Crater, Mars

D. T. Vaniman; David L. Bish; D. W. Ming; Thomas F. Bristow; Richard V. Morris; David F. Blake; S. J. Chipera; Shaunna M. Morrison; Allan H. Treiman; E. B. Rampe; Melissa S. Rice; C. N. Achilles; John P. Grotzinger; Scott M. McLennan; J. Williams; James F. Bell; H. Newsom; Robert T. Downs; Sylvestre Maurice; Philippe Sarrazin; Albert S. Yen; J. M. Morookian; Jack D. Farmer; K. Stack; Ralph E. Milliken; Bethany L. Ehlmann; Dawn Y. Sumner; Gilles Berger; Joy A. Crisp; Joel A. Hurowitz

or about 0.6 the present discharge.


Science | 2008

Detection of Silica-Rich Deposits on Mars

Steven W. Squyres; Raymond E. Arvidson; Steven W. Ruff; R. Gellert; Richard V. Morris; D. W. Ming; Larry S. Crumpler; Jack D. Farmer; D. J. Des Marais; Albert S. Yen; Scott M. McLennan; Wendy M. Calvin; James F. Bell; Benton C. Clark; Aihui H. Wang; Timothy J. McCoy; Mariek E. Schmidt; P. A. de Souza

The Mars Exploration Rover Opportunity has investigated the landing site in Eagle crater and the nearby plains within Meridiani Planum. The soils consist of fine-grained basaltic sand and a surface lag of hematite-rich spherules, spherule fragments, and other granules. Wind ripples are common. Underlying the thin soil layer, and exposed within small impact craters and troughs, are flat-lying sedimentary rocks. These rocks are finely laminated, are rich in sulfur, and contain abundant sulfate salts. Small-scale cross-lamination in some locations provides evidence for deposition in flowing liquid water. We interpret the rocks to be a mixture of chemical and siliciclastic sediments formed by episodic inundation by shallow surface water, followed by evaporation, exposure, and desiccation. Hematite-rich spherules are embedded in the rock and eroding from them. We interpret these spherules to be concretions formed by postdepositional diagenesis, again involving liquid water.


Journal of Geophysical Research | 2006

Characterization and petrologic interpretation of olivine‐rich basalts at Gusev Crater, Mars

Y. McSween; Michael Bruce Wyatt; Ralf Gellert; James F. Bell; Richard V. Morris; K. E. Herkenhoff; Larry S. Crumpler; Keith A. Milam; Karen R. Stockstill; Livio L. Tornabene; Raymond E. Arvidson; Paul Bartlett; Diana L. Blaney; Nathalie A. Cabrol; Philip R. Christensen; B. C. Clark; Joy A. Crisp; D. J. Des Marais; T. Economou; Jack D. Farmer; William H. Farrand; Anupam Ghosh; M. P. Golombek; S. Gorevan; Ronald Greeley; Victoria E. Hamilton; James Richard Johnson; B. L. Joliff; G. Klingelhöfer; Amy T. Knudson

The Curiosity rover discovered fine-grained sedimentary rocks, which are inferred to represent an ancient lake and preserve evidence of an environment that would have been suited to support a martian biosphere founded on chemolithoautotrophy. This aqueous environment was characterized by neutral pH, low salinity, and variable redox states of both iron and sulfur species. Carbon, hydrogen, oxygen, sulfur, nitrogen, and phosphorus were measured directly as key biogenic elements; by inference, phosphorus is assumed to have been available. The environment probably had a minimum duration of hundreds to tens of thousands of years. These results highlight the biological viability of fluvial-lacustrine environments in the post-Noachian history of Mars.

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John P. Grotzinger

California Institute of Technology

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James F. Bell

Arizona State University

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Raymond E. Arvidson

Washington University in St. Louis

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Joel A. Hurowitz

State University of New York System

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K. E. Herkenhoff

United States Geological Survey

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B. C. Clark

Space Science Institute

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