He-Ar isotopic signatures of the Mesozoic granitoids in South Korea: implications for genesis of the granitic magma and crustal evolution in NE continental margin of the Eurasian plate

In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium ( 3 He/ 4 He), argon ( 40 Ar/ 36 Ar) and neon ( 20 Ne/ 22 Ne, 21 Ne/ 22 Ne) were determined for Mesozoic quartz and biotite minerals from granitic ro...

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Published inGeosciences journal (Seoul, Korea) Vol. 28; no. 6; pp. 811 - 825
Main Authors Kim, Kyu Han, Nagao, Keisuke, Sumino, Hirochika, Lee, Jong Ik, Park, Jisun
Format Journal Article
LanguageEnglish
Published Seoul The Geological Society of Korea 01.12.2024
Springer Nature B.V
한국지질과학협의회
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ISSN1226-4806
1598-7477
DOI10.1007/s12303-024-0038-9

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Abstract In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium ( 3 He/ 4 He), argon ( 40 Ar/ 36 Ar) and neon ( 20 Ne/ 22 Ne, 21 Ne/ 22 Ne) were determined for Mesozoic quartz and biotite minerals from granitic rocks in the Korean peninsula. 3 He/ 4 He ratios in fluid inclusions of quartz samples have a wide range from 0.005 to 0.522 R A (av. 0.095 R A ) and 0.013 to 1.27 R A (av. 0.37 R A ) (R A =1.40 × 10 −6 , atmospheric value) for Jurassic (Daebo) and Cretaceous (Bulguksa) granites, respectively. The 3 He/ 4 He ratios clearly show a contribution of mantle-derived He to the granitic rock at the formation, then the helium has been deeply affected by accumulation of in situ produced radiogenic 4 He and/or crustal helium. Although these ratios are lower than those of the subcontinental lithospheric mantle (SCLM) (6.1 ± 0.9 R A ), mantle helium has been traced in these Mesozoic I-type granites from South Korea. The observations imply that the helium of SCLM source predominates over all of the Jurassic granites in South Korea and the Cretaceous granites in the Ogcheon belt (OB), and suggests that the granitic magma was derived from the partial melting product of SCLM materials with appreciable amounts of radiogenic helium. Meanwhile, Cretaceous granites were originated from igneous mantle source materials beneath the Gyeongsang basin, south-eastern area of the Korean peninsula. A presence of mantle components ( 20 Ne/ 22 Ne ≈ 10.13) and/or nucleogenic Ne were identified in some quartz and most biotite samples of granitoids in Jurassic age. Argon isotopic ratios (av. 40 Ar/ 36 Ar = 2370) of fluid inclusions in quartz for Jurassic granites are considerably higher than those in Cretaceous granites (av. 40 Ar/ 36 Ar = 414), indicating a clear aging effect. He-Ar isotopic signatures together with the characteristics of Nd, Sr, and O isotopes can lead to the conclusion that the generation of Jurassic granitic magma was responsible for the subduction of the Izanagi oceanic plate. Meanwhile, the subduction ridge (e.g., the Kula-Pacific Ridge) model is likely to be a suitable scenario for formation of the Cretaceous granitic magma in the Korean peninsula.
AbstractList In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium (3He/4He), argon (40Ar/36Ar) and neon (20Ne/22Ne, 21Ne/22Ne) were determined for Mesozoic quartz and biotite minerals from granitic rocks in the Korean peninsula. 3He/4He ratios in fluid inclusions of quartz samples have a wide range from 0.005 to 0.522 RA (av. 0.095 RA) and 0.013 to 1.27 RA (av. 0.37 RA) (RA = 1.40 × 10−6, atmospheric value) for Jurassic (Daebo) and Cretaceous (Bulguksa) granites, respectively. The 3He/4He ratios clearly show a contribution of mantle-derived He to the granitic rock at the formation, then the helium has been deeply affected by accumulation of in situ produced radiogenic 4He and/or crustal helium. Although these ratios are lower than those of the subcontinental lithospheric mantle (SCLM) (6.1 ± 0.9 RA), mantle helium has been traced in these Mesozoic I-type granites from South Korea. The observations imply that the helium of SCLM source predominates over all of the Jurassic granites in South Korea and the Cretaceous granites in the Ogcheon belt (OB), and suggests that the granitic magma was derived from the partial melting product of SCLM materials with appreciable amounts of radiogenic helium. Meanwhile, Cretaceous granites were originated from igneous mantle source materials beneath the Gyeongsang basin, south-eastern area of the Korean peninsula. A presence of mantle components (20Ne/22Ne ≈ 10.13) and/or nucleogenic Ne were identified in some quartz and most biotite samples of granitoids in Jurassic age. Argon isotopic ratios (av. 40Ar/36Ar = 2370) of fluid inclusions in quartz for Jurassic granites are considerably higher than those in Cretaceous granites (av. 40Ar/36Ar = 414), indicating a clear aging effect. He-Ar isotopic signatures together with the characteristics of Nd, Sr, and O isotopes can lead to the conclusion that the generation of Jurassic granitic magma was responsible for the subduction of the Izanagi oceanic plate. Meanwhile, the subduction ridge (e.g., the Kula-Pacific Ridge) model is likely to be a suitable scenario for formation of the Cretaceous granitic magma in the Korean peninsula. KCI Citation Count: 0
In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium (3He/4He), argon (40Ar/36Ar) and neon (20Ne/22Ne, 21Ne/22Ne) were determined for Mesozoic quartz and biotite minerals from granitic rocks in the Korean peninsula. 3He/4He ratios in fluid inclusions of quartz samples have a wide range from 0.005 to 0.522 RA (av. 0.095 RA) and 0.013 to 1.27 RA (av. 0.37 RA) (RA =1.40 × 10−6, atmospheric value) for Jurassic (Daebo) and Cretaceous (Bulguksa) granites, respectively. The 3He/4He ratios clearly show a contribution of mantle-derived He to the granitic rock at the formation, then the helium has been deeply affected by accumulation of in situ produced radiogenic 4He and/or crustal helium. Although these ratios are lower than those of the subcontinental lithospheric mantle (SCLM) (6.1 ± 0.9 RA), mantle helium has been traced in these Mesozoic I-type granites from South Korea. The observations imply that the helium of SCLM source predominates over all of the Jurassic granites in South Korea and the Cretaceous granites in the Ogcheon belt (OB), and suggests that the granitic magma was derived from the partial melting product of SCLM materials with appreciable amounts of radiogenic helium. Meanwhile, Cretaceous granites were originated from igneous mantle source materials beneath the Gyeongsang basin, south-eastern area of the Korean peninsula. A presence of mantle components (20Ne/22Ne ≈ 10.13) and/or nucleogenic Ne were identified in some quartz and most biotite samples of granitoids in Jurassic age. Argon isotopic ratios (av. 40Ar/36Ar = 2370) of fluid inclusions in quartz for Jurassic granites are considerably higher than those in Cretaceous granites (av. 40Ar/36Ar = 414), indicating a clear aging effect. He-Ar isotopic signatures together with the characteristics of Nd, Sr, and O isotopes can lead to the conclusion that the generation of Jurassic granitic magma was responsible for the subduction of the Izanagi oceanic plate. Meanwhile, the subduction ridge (e.g., the Kula-Pacific Ridge) model is likely to be a suitable scenario for formation of the Cretaceous granitic magma in the Korean peninsula.
In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium ( 3 He/ 4 He), argon ( 40 Ar/ 36 Ar) and neon ( 20 Ne/ 22 Ne, 21 Ne/ 22 Ne) were determined for Mesozoic quartz and biotite minerals from granitic rocks in the Korean peninsula. 3 He/ 4 He ratios in fluid inclusions of quartz samples have a wide range from 0.005 to 0.522 R A (av. 0.095 R A ) and 0.013 to 1.27 R A (av. 0.37 R A ) (R A =1.40 × 10 −6 , atmospheric value) for Jurassic (Daebo) and Cretaceous (Bulguksa) granites, respectively. The 3 He/ 4 He ratios clearly show a contribution of mantle-derived He to the granitic rock at the formation, then the helium has been deeply affected by accumulation of in situ produced radiogenic 4 He and/or crustal helium. Although these ratios are lower than those of the subcontinental lithospheric mantle (SCLM) (6.1 ± 0.9 R A ), mantle helium has been traced in these Mesozoic I-type granites from South Korea. The observations imply that the helium of SCLM source predominates over all of the Jurassic granites in South Korea and the Cretaceous granites in the Ogcheon belt (OB), and suggests that the granitic magma was derived from the partial melting product of SCLM materials with appreciable amounts of radiogenic helium. Meanwhile, Cretaceous granites were originated from igneous mantle source materials beneath the Gyeongsang basin, south-eastern area of the Korean peninsula. A presence of mantle components ( 20 Ne/ 22 Ne ≈ 10.13) and/or nucleogenic Ne were identified in some quartz and most biotite samples of granitoids in Jurassic age. Argon isotopic ratios (av. 40 Ar/ 36 Ar = 2370) of fluid inclusions in quartz for Jurassic granites are considerably higher than those in Cretaceous granites (av. 40 Ar/ 36 Ar = 414), indicating a clear aging effect. He-Ar isotopic signatures together with the characteristics of Nd, Sr, and O isotopes can lead to the conclusion that the generation of Jurassic granitic magma was responsible for the subduction of the Izanagi oceanic plate. Meanwhile, the subduction ridge (e.g., the Kula-Pacific Ridge) model is likely to be a suitable scenario for formation of the Cretaceous granitic magma in the Korean peninsula.
Author Nagao, Keisuke
Sumino, Hirochika
Lee, Jong Ik
Park, Jisun
Kim, Kyu Han
Author_xml – sequence: 1
  givenname: Kyu Han
  surname: Kim
  fullname: Kim, Kyu Han
  email: kyuhan@ewha.ac.kr
  organization: Department of Science Education, Ewha Womans University
– sequence: 2
  givenname: Keisuke
  surname: Nagao
  fullname: Nagao, Keisuke
  organization: Geochemical Research Center, Graduate School of Science, University of Tokyo
– sequence: 3
  givenname: Hirochika
  surname: Sumino
  fullname: Sumino, Hirochika
  organization: Geochemical Research Center, Graduate School of Science, University of Tokyo, Research Center for Advanced Science and Technology, University of Tokyo
– sequence: 4
  givenname: Jong Ik
  surname: Lee
  fullname: Lee, Jong Ik
  organization: Korea Polar Research Institute
– sequence: 5
  givenname: Jisun
  surname: Park
  fullname: Park, Jisun
  organization: Physical Sciences, Kingsborough Community College of the City University of New York (CUNY), Department of Earth and Planetary Sciences, American Museum of Natural History
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Keywords Daebo and Bulguksa granites
argon isotope
mantle helium
fluid inclusion
granitic magma
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  doi: 10.1016/j.epsl.2011.05.012
– volume: 6
  start-page: 121
  year: 1997
  ident: 38_CR63
  publication-title: Island Arc
  doi: 10.1111/j.1440-1738.1997.tb00043.x
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Snippet In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium ( 3 He/...
In order to constrain the granitic magma source at the northeastern continental margin of the Eurasian plate, noble gas isotopic ratios such as helium...
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SubjectTerms Aging
Argon
Biotite
Continental margins
Cretaceous
Earth and Environmental Science
Earth Sciences
Fluid inclusions
Granite
Helium
Isotope ratios
Isotopes
Jurassic
Lava
Magma
Mesozoic
Neon
Plates
Plates (tectonics)
Quartz
Rare gases
Rocks
Signatures
Subduction
지질학
Title He-Ar isotopic signatures of the Mesozoic granitoids in South Korea: implications for genesis of the granitic magma and crustal evolution in NE continental margin of the Eurasian plate
URI https://link.springer.com/article/10.1007/s12303-024-0038-9
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Volume 28
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