The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite

Along the western edge of the Bohemian Massif, SE Germany, graphitic carbon occurs in metabasic rocks plus calcsilicates, metabiolites, and paragneisses (graphite I), in pegmatites (graphite II) and in mineralized structure zones (semigraphite and impsonite) The current studies unveiled these graphitic carbon compounds are strikingly different with regard to their age and temperature of formation: Graphite I (≥324 Ma, 570 to 625 °C), graphite II (317 ± 3 Ma, >400 °C), semi-graphite (305 ± Ma, 225 to 400 °C), impsonite (<298 ± 4 Ma, 100 to 363 °C). Semi-graphite takes a special position among these graphitic carbon compounds because it links the different carbon modifications with regard to its age of formation, its structural position and its S- and C isotopes that point to a mantle and crustal influence on its formation in contrast to graphite (graphite I: crustal, graphite II: mantle) and impsonite (mantle). Semi-graphite precipitated in a fault zone which evolved from a zone of strong felsic mobilization in metabasic rocks spawning K–Na feldspar-quartz pegmatoids/aploids. During conversion of a pre-existing zone of felsic mobilization into a brittle shearzone not only carbonaceous matter but also Ni-, Pb-, Cu-, Zn-, As-, Fe-, Hg- and Mo sulfides were concentrated. The semi-graphite-bearing mineralized zone is located near rare element pegmatites hosting graphite flakes. The C-bearing systems are useful pathfinders to locate structurebound mineral deposits hosting U or base metals in the Variscan orogen. The structurebound metalliferous semi-graphite mineralization in metabasic rocks can be taken as a reference type of dual-source hydrocarbon immigration into fault zones, syn- to postkinematically relative to the fault movement. The model can be applied to host rocks undergoing retrograde medium- to very-low-grade stage dynamo-metamorphic conditions. To elucidate the complex history of the various types of graphite and metamorphosed bitumen a multidisciplinary approach has been taken involving petrographic and geological field mapping combined with drill core examination, petrographic and ore microscopy supplemented by electron microprobe, X-ray diffraction and scanning electron microscopy with EDX, micro-Raman spectroscopy in addition to classical coal petrographic studies, and inorganic geochemistry of major and minor elements and isotope (carbon and sulfur) chemical analysis followed up by a statistical treatment of the various chemical datasets.

Saved in:
Bibliographic Details
Main Authors: Dill, Harald G., Kus, J., Goldmann, S., Suárez Ruiz, Isabel, Neumann, T., Kaufhold, S.
Format: artículo biblioteca
Published: Elsevier BV 2019
Subjects:Semi-graphite, Graphite, Impsonite, Crustal-subcrustal processes, SE German Basement/Bohemian Massif,
Online Access:http://hdl.handle.net/10261/224160
Tags: Add Tag
No Tags, Be the first to tag this record!
id dig-incar-es-10261-224160
record_format koha
spelling dig-incar-es-10261-2241602022-04-21T11:49:14Z The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite Dill, Harald G. Kus, J. Goldmann, S. Suárez Ruiz, Isabel Neumann, T. Kaufhold, S. Semi-graphite Graphite Impsonite Crustal-subcrustal processes SE German Basement/Bohemian Massif Along the western edge of the Bohemian Massif, SE Germany, graphitic carbon occurs in metabasic rocks plus calcsilicates, metabiolites, and paragneisses (graphite I), in pegmatites (graphite II) and in mineralized structure zones (semigraphite and impsonite) The current studies unveiled these graphitic carbon compounds are strikingly different with regard to their age and temperature of formation: Graphite I (≥324 Ma, 570 to 625 °C), graphite II (317 ± 3 Ma, >400 °C), semi-graphite (305 ± Ma, 225 to 400 °C), impsonite (<298 ± 4 Ma, 100 to 363 °C). Semi-graphite takes a special position among these graphitic carbon compounds because it links the different carbon modifications with regard to its age of formation, its structural position and its S- and C isotopes that point to a mantle and crustal influence on its formation in contrast to graphite (graphite I: crustal, graphite II: mantle) and impsonite (mantle). Semi-graphite precipitated in a fault zone which evolved from a zone of strong felsic mobilization in metabasic rocks spawning K–Na feldspar-quartz pegmatoids/aploids. During conversion of a pre-existing zone of felsic mobilization into a brittle shearzone not only carbonaceous matter but also Ni-, Pb-, Cu-, Zn-, As-, Fe-, Hg- and Mo sulfides were concentrated. The semi-graphite-bearing mineralized zone is located near rare element pegmatites hosting graphite flakes. The C-bearing systems are useful pathfinders to locate structurebound mineral deposits hosting U or base metals in the Variscan orogen. The structurebound metalliferous semi-graphite mineralization in metabasic rocks can be taken as a reference type of dual-source hydrocarbon immigration into fault zones, syn- to postkinematically relative to the fault movement. The model can be applied to host rocks undergoing retrograde medium- to very-low-grade stage dynamo-metamorphic conditions. To elucidate the complex history of the various types of graphite and metamorphosed bitumen a multidisciplinary approach has been taken involving petrographic and geological field mapping combined with drill core examination, petrographic and ore microscopy supplemented by electron microprobe, X-ray diffraction and scanning electron microscopy with EDX, micro-Raman spectroscopy in addition to classical coal petrographic studies, and inorganic geochemistry of major and minor elements and isotope (carbon and sulfur) chemical analysis followed up by a statistical treatment of the various chemical datasets. 2020-12-02T09:30:05Z 2020-12-02T09:30:05Z 2019 2020-12-02T09:30:06Z artículo http://purl.org/coar/resource_type/c_6501 doi: 10.1016/j.coal.2019.103262 issn: 0166-5162 International Journal of Coal Geology 214: 103262 (2019) http://hdl.handle.net/10261/224160 10.1016/j.coal.2019.103262 http://dx.doi.org/10.1016/j.coal.2019.103262 Sí none Elsevier BV
institution INCAR ES
collection DSpace
country España
countrycode ES
component Bibliográfico
access En linea
databasecode dig-incar-es
tag biblioteca
region Europa del Sur
libraryname Biblioteca del INCAR España
topic Semi-graphite
Graphite
Impsonite
Crustal-subcrustal processes
SE German Basement/Bohemian Massif
Semi-graphite
Graphite
Impsonite
Crustal-subcrustal processes
SE German Basement/Bohemian Massif
spellingShingle Semi-graphite
Graphite
Impsonite
Crustal-subcrustal processes
SE German Basement/Bohemian Massif
Semi-graphite
Graphite
Impsonite
Crustal-subcrustal processes
SE German Basement/Bohemian Massif
Dill, Harald G.
Kus, J.
Goldmann, S.
Suárez Ruiz, Isabel
Neumann, T.
Kaufhold, S.
The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite
description Along the western edge of the Bohemian Massif, SE Germany, graphitic carbon occurs in metabasic rocks plus calcsilicates, metabiolites, and paragneisses (graphite I), in pegmatites (graphite II) and in mineralized structure zones (semigraphite and impsonite) The current studies unveiled these graphitic carbon compounds are strikingly different with regard to their age and temperature of formation: Graphite I (≥324 Ma, 570 to 625 °C), graphite II (317 ± 3 Ma, >400 °C), semi-graphite (305 ± Ma, 225 to 400 °C), impsonite (<298 ± 4 Ma, 100 to 363 °C). Semi-graphite takes a special position among these graphitic carbon compounds because it links the different carbon modifications with regard to its age of formation, its structural position and its S- and C isotopes that point to a mantle and crustal influence on its formation in contrast to graphite (graphite I: crustal, graphite II: mantle) and impsonite (mantle). Semi-graphite precipitated in a fault zone which evolved from a zone of strong felsic mobilization in metabasic rocks spawning K–Na feldspar-quartz pegmatoids/aploids. During conversion of a pre-existing zone of felsic mobilization into a brittle shearzone not only carbonaceous matter but also Ni-, Pb-, Cu-, Zn-, As-, Fe-, Hg- and Mo sulfides were concentrated. The semi-graphite-bearing mineralized zone is located near rare element pegmatites hosting graphite flakes. The C-bearing systems are useful pathfinders to locate structurebound mineral deposits hosting U or base metals in the Variscan orogen. The structurebound metalliferous semi-graphite mineralization in metabasic rocks can be taken as a reference type of dual-source hydrocarbon immigration into fault zones, syn- to postkinematically relative to the fault movement. The model can be applied to host rocks undergoing retrograde medium- to very-low-grade stage dynamo-metamorphic conditions. To elucidate the complex history of the various types of graphite and metamorphosed bitumen a multidisciplinary approach has been taken involving petrographic and geological field mapping combined with drill core examination, petrographic and ore microscopy supplemented by electron microprobe, X-ray diffraction and scanning electron microscopy with EDX, micro-Raman spectroscopy in addition to classical coal petrographic studies, and inorganic geochemistry of major and minor elements and isotope (carbon and sulfur) chemical analysis followed up by a statistical treatment of the various chemical datasets.
format artículo
topic_facet Semi-graphite
Graphite
Impsonite
Crustal-subcrustal processes
SE German Basement/Bohemian Massif
author Dill, Harald G.
Kus, J.
Goldmann, S.
Suárez Ruiz, Isabel
Neumann, T.
Kaufhold, S.
author_facet Dill, Harald G.
Kus, J.
Goldmann, S.
Suárez Ruiz, Isabel
Neumann, T.
Kaufhold, S.
author_sort Dill, Harald G.
title The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite
title_short The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite
title_full The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite
title_fullStr The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite
title_full_unstemmed The physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (SE Germany) – A multidisciplinary study of the missing link between impsonite and graphite
title_sort physical-chemical regime of a sulfide-bearing semi-graphite mineral assemblage in metabasic rocks (se germany) – a multidisciplinary study of the missing link between impsonite and graphite
publisher Elsevier BV
publishDate 2019
url http://hdl.handle.net/10261/224160
work_keys_str_mv AT dillharaldg thephysicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT kusj thephysicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT goldmanns thephysicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT suarezruizisabel thephysicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT neumannt thephysicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT kaufholds thephysicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT dillharaldg physicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT kusj physicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT goldmanns physicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT suarezruizisabel physicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT neumannt physicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
AT kaufholds physicalchemicalregimeofasulfidebearingsemigraphitemineralassemblageinmetabasicrockssegermanyamultidisciplinarystudyofthemissinglinkbetweenimpsoniteandgraphite
_version_ 1777669052779462656