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Sepiolite and Other Authigenic Mg-Clay Minerals Formation in Different Palustrine Environments (Madrid Basin, Spain)
by
Pozo, Manuel
, Herranz, Juan
in
Carbonates
/ Chemical elements
/ Chert
/ Clay
/ Clay minerals
/ Crystal structure
/ Crystallinity
/ Deposits
/ Hydrochemistry
/ Illite
/ Illites
/ Inserts
/ Kaolinite
/ Lakes
/ Lithofacies
/ Lithology
/ Lutites
/ Magnesium
/ Metamorphic rocks
/ Mineralogy
/ Minerals
/ Miocene
/ Mud
/ Mud flats
/ Mudstone
/ Nodules
/ Palygorskite
/ Saponite
/ Sepiolite
/ Smectites
/ Trace elements
2022
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Sepiolite and Other Authigenic Mg-Clay Minerals Formation in Different Palustrine Environments (Madrid Basin, Spain)
by
Pozo, Manuel
, Herranz, Juan
in
Carbonates
/ Chemical elements
/ Chert
/ Clay
/ Clay minerals
/ Crystal structure
/ Crystallinity
/ Deposits
/ Hydrochemistry
/ Illite
/ Illites
/ Inserts
/ Kaolinite
/ Lakes
/ Lithofacies
/ Lithology
/ Lutites
/ Magnesium
/ Metamorphic rocks
/ Mineralogy
/ Minerals
/ Miocene
/ Mud
/ Mud flats
/ Mudstone
/ Nodules
/ Palygorskite
/ Saponite
/ Sepiolite
/ Smectites
/ Trace elements
2022
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Sepiolite and Other Authigenic Mg-Clay Minerals Formation in Different Palustrine Environments (Madrid Basin, Spain)
by
Pozo, Manuel
, Herranz, Juan
in
Carbonates
/ Chemical elements
/ Chert
/ Clay
/ Clay minerals
/ Crystal structure
/ Crystallinity
/ Deposits
/ Hydrochemistry
/ Illite
/ Illites
/ Inserts
/ Kaolinite
/ Lakes
/ Lithofacies
/ Lithology
/ Lutites
/ Magnesium
/ Metamorphic rocks
/ Mineralogy
/ Minerals
/ Miocene
/ Mud
/ Mud flats
/ Mudstone
/ Nodules
/ Palygorskite
/ Saponite
/ Sepiolite
/ Smectites
/ Trace elements
2022
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Sepiolite and Other Authigenic Mg-Clay Minerals Formation in Different Palustrine Environments (Madrid Basin, Spain)
Journal Article
Sepiolite and Other Authigenic Mg-Clay Minerals Formation in Different Palustrine Environments (Madrid Basin, Spain)
2022
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Overview
Lithofacies belonging to mud-flat and palustrine deposits (lake margin) in the Miocene of the Madrid Basin (Spain) have been studied. Four lithofacies corresponding to mud flat (1 and 3) and palustrine (2 and 4) deposits have been differentiated. Units 1 and 3 consist mainly of mudstones and carbonates (calcretes and diolocretes). The clay fraction is dominated by trioctahedral smectite (up to 79%) with illite and kaolinite as minor components. The d(060) spacing value shows reflections at 1.52 and 1.50 Å indicating also the presence of dioctahedral phyllosilicates. Unit 2 consists predominantly of lutites (claystones), locally with carbonate and chert nodules. The clay fraction is dominated by sepiolite (up to 96%) with variable contents of smectite and subordinate illite. The d(060) spacing value shows reflections at 1.51 and 1.52 Å indicating trioctahedral clay minerals. Unit 4 consists mostly of carbonates (limestones) with mudstone and lutite inserts. The clay fraction shows different contents of sepiolite, palygorskite and dioctahedral smectite. The analysis of a selection of trace elements (Cr, Co, Th, La, Sc) has allowed us to determine the characteristics of the source area as dioritic, somewhat different from those of the nearby materials from the Batallones sector. Sepiolite shows FWHM values ranging between 0.68 and 1.10 (2θ), indicating “low crystallinity sepiolite”. Differences in the conditions of formation of magnesian smectite and palygorskite have been observed in the mud-flat and palustrine deposits. The formation of sepiolite mainly by neoformation in palustrine deposits with different hydrochemistry is remarkable, leading to differences in fibre size and crystallinity of the fibrous clay mineral. Authigenic transformation processes from previous Al-rich phases would be responsible for the formation of saponite and palygorskite in mud flat and palustrine environments, with different pH conditions.
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