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Dive into the research topics where Matthew S. A. Horstwood is active.

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Featured researches published by Matthew S. A. Horstwood.


Chemical Geology | 2002

Textural, chemical and isotopic insights into the nature and behaviour of metamorphic monazite

Gavin L. Foster; H. D. Gibson; Randy R. Parrish; Matthew S. A. Horstwood; James Fraser; A. G. Tindle

Monazite is a mineral of choice for dating metamorphism in amphibolite- and granulite-grade metapelites. However, there exist a number of difficulties that complicate the interpretation of monazite geochronological data and prevent its application to many geological problems. The two main obstacles addressed in this contribution are firstly, the minor but significant (e.g. 1–30 Ma) dispersal in duplicate isotope dilution thermal ionisation mass spectrometry (ID-TIMS) U–Pb age data commonly recorded from a single rock, and secondly, the difficulty of attaching monazite age data to pressure and temperature information. Through a multidisciplinary approach utilising TIMS and laser ablation multicollector inductively coupled plasma mass spectrometry (LA-MC-ICPMS) isotope data, quantitative and qualitative EMP chemical analyses of monazite, and textural studies, we assess the significance of Pb loss, older components, and continuous and episodic monazite growth in the generation of dispersed age data. Three samples from the Canadian Cordillera and one sample from the Himalaya of Pakistan are examined. Each sample exhibits an age dispersion of between 1 and 12 Ma for single crystal and multi-grain TIMS U–Pb monazite age determinations. Consideration of the closure temperature for Pb diffusion in monazite and the metamorphic temperatures experienced by these samples suggests diffusive Pb loss did not play a significant part in generating this age dispersal. The LA-MC-ICPMS study indicates that an older component (<100 Ma older than the TIMS ages) contributed to the age dispersal in three of the four samples. In all the samples however, chemical analyses identified that the majority of monazites examined exhibited significant intra-crystalline zoning in Y content. The LA-MC-ICPMS analysis of one sample that was constrained to zones of distinct Y content indicates that these zones are of distinct age. We suggest that monazite grown before the appearance of garnet and during garnet breakdown is relatively rich in Y, whereas monazite grown after garnet is relatively poor in Y. A combination of these chemical data with textural observations suggests that once monazite had entered the mineral assemblage it grew or recrystallised episodically throughout the prograde and retrograde paths of the metamorphic event. This behaviour contributes to, and in one of the samples controls, the observed age dispersal. This recognition allows the generation of pressure–temperature–time points by combining textural and chemical information of monazite with in situ age determinations, and pressure–temperature information from garnet. Thus, the episodic growth of compositionally distinct monazite throughout a metamorphic event provides the geochronologist with a very valuable chronological tool.


The Journal of Geology | 2009

Timing of Midcrustal Metamorphism, Melting, and Deformation in the Mount Everest Region of Southern Tibet Revealed by U(‐Th)‐Pb Geochronology

John M. Cottle; Michael P. Searle; Matthew S. A. Horstwood; D. J. Waters

U(‐Th)‐Pb dating of zircon, monazite, and xenotime from metamorphic and igneous rocks at two outcrops along a north‐south transect in the Mount Everest region of southern Tibet provide new constraints on the timing and duration of thermal events associated with channel flow and the ductile extrusion of the Greater Himalayan Series (GHS). At the southernmost outcrop in the Kangshung Valley, Th‐Pb ages from monazite indicate that prograde metamorphism associated with crustal thickening following the India‐Asia collision occurred at least as early as \documentclass{aastex} \usepackage{amsbsy} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{bm} \usepackage{mathrsfs} \usepackage{pifont} \usepackage{stmaryrd} \usepackage{textcomp} \usepackage{portland,xspace} \usepackage{amsmath,amsxtra} \usepackage[OT2,OT1]{fontenc} \newcommand\cyr{ \renewcommand\rmdefault{wncyr} \renewcommand\sfdefault{wncyss} \renewcommand\encodingdefault{OT2} \normalfont \selectfont} \DeclareTextFontCommand{\textcyr}{\cyr} \pagestyle{empty} \DeclareMathSizes{10}{9}{7}{6} \begin{document} \landscape


Journal of Analytical Atomic Spectrometry | 2003

Instrument response functions, mass bias and matrix effects in isotope ratio measurements and semi-quantitative analysis by single and multi-collector ICP-MS

Christopher P. Ingle; Barry L. Sharp; Matthew S. A. Horstwood; Randall R. Parrish; D. John Lewis


Geological Society of America Bulletin | 2007

Combined U-Pb geochronology and Hf isotope geochemistry of detrital zircons from early Paleozoic sedimentary rocks, Ellsworth-Whitmore Mountains block, Antarctica

Michael J. Flowerdew; Ian L. Millar; Michael L. Curtis; Alan P. M. Vaughan; Matthew S. A. Horstwood; Martin J. Whitehouse; Christopher Fanning

38.9\pm 0.9


Journal of the Geological Society | 2006

Timing and kinematics of Eburnean tectonics in the central Reguibat Shield, Mauritania

David I. Schofield; Matthew S. A. Horstwood; P.E.J. Pitfield; Quentin G. Crowley; A.F. Wilkinson; H.Ch.O. Sidaty


Journal of the Geological Society | 2007

The late Mesoproterozoic–early Neoproterozoic tectonostratigraphic evolution of NW Scotland: the Torridonian revisited

Tim C. Kinnaird; Anthony R. Prave; Christopher L. Kirkland; Matthew S. A. Horstwood; Randall R. Parrish; Richard A. Batchelor

\end{document} Ma. A subsequent sillimanite‐grade metamorphic event at \documentclass{aastex} \usepackage{amsbsy} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{bm} \usepackage{mathrsfs} \usepackage{pifont} \usepackage{stmaryrd} \usepackage{textcomp} \usepackage{portland,xspace} \usepackage{amsmath,amsxtra} \usepackage[OT2,OT1]{fontenc} \newcommand\cyr{ \renewcommand\rmdefault{wncyr} \renewcommand\sfdefault{wncyss} \renewcommand\encodingdefault{OT2} \normalfont \selectfont} \DeclareTextFontCommand{\textcyr}{\cyr} \pagestyle{empty} \DeclareMathSizes{10}{9}{7}{6} \begin{document} \landscape


Chemical Geology | 2003

Silicate weathering rates decoupled from the 87Sr/86Sr ratio of the dissolved load during Himalayan erosion

Lee Oliver; Nigel Harris; Michael J. Bickle; Hazel J. Chapman; Nancy B. Dise; Matthew S. A. Horstwood


Geology | 1999

U-Pb zircon evidence for an extensive early Archean craton in Zimbabwe: A reassessment of the timing of craton formation, stabilization, and growth

Matthew S. A. Horstwood; Robert W. Nesbitt; Stephen R. Noble; James F. Wilson

28.0\pm 1.2


Tectonics | 2011

A short‐duration pulse of ductile normal shear on the outer South Tibetan detachment in Bhutan: Alternating channel flow and critical taper mechanics of the eastern Himalaya

Jennifer Chambers; Randall R. Parrish; Tom Argles; Nigel Harris; Matthew S. A. Horstwood


Journal of the Geological Society | 2014

Tectonic interleaving along the Main Central Thrust, Sikkim Himalaya

Catherine M. Mottram; Tom Argles; Nigel Harris; Randall R. Parrish; Matthew S. A. Horstwood; Clare J. Warren; S. Gupta

\end{document} Ma was followed by two phases of leucogranite emplacement at \documentclass{aastex} \usepackage{amsbsy} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{bm} \usepackage{mathrsfs} \usepackage{pifont} \usepackage{stmaryrd} \usepackage{textcomp} \usepackage{portland,xspace} \usepackage{amsmath,amsxtra} \usepackage[OT2,OT1]{fontenc} \newcommand\cyr{ \renewcommand\rmdefault{wncyr} \renewcommand\sfdefault{wncyss} \renewcommand\encodingdefault{OT2} \normalfont \selectfont} \DeclareTextFontCommand{\textcyr}{\cyr} \pagestyle{empty} \DeclareMathSizes{10}{9}{7}{6} \begin{document} \landscape

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R.J. Thomas

British Geological Survey

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Vanessa Pashley

British Geological Survey

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John M. Cottle

University of California

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