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    白云岩Mg同位素特征及其在岛屿-盆地研究中的进展

    许红 闫琢玉 付和平 王修齐 苏大鹏

    许红, 闫琢玉, 付和平, 王修齐, 苏大鹏, 2025. 白云岩Mg同位素特征及其在岛屿-盆地研究中的进展. 地球科学, 50(8): 3225-3240. doi: 10.3799/dqkx.2025.047
    引用本文: 许红, 闫琢玉, 付和平, 王修齐, 苏大鹏, 2025. 白云岩Mg同位素特征及其在岛屿-盆地研究中的进展. 地球科学, 50(8): 3225-3240. doi: 10.3799/dqkx.2025.047
    Xu Hong, Yan Zhuoyu, Fu Heping, Wang Xiuqi, Su Dapeng, 2025. Characterization of Mg Isotopes in Dolomites and Advances in Island-Basin Studies. Earth Science, 50(8): 3225-3240. doi: 10.3799/dqkx.2025.047
    Citation: Xu Hong, Yan Zhuoyu, Fu Heping, Wang Xiuqi, Su Dapeng, 2025. Characterization of Mg Isotopes in Dolomites and Advances in Island-Basin Studies. Earth Science, 50(8): 3225-3240. doi: 10.3799/dqkx.2025.047

    白云岩Mg同位素特征及其在岛屿-盆地研究中的进展

    doi: 10.3799/dqkx.2025.047
    基金项目: 

    国家自然科学基金项目 41106064

    国家重点研发计划项目 2017FY201407

    国家重点基础研究发展计划项目 2012CB956004

    国家油气重大专项 2011ZX05025-002-04

    详细信息
      作者简介:

      许红(1957-),男,博士,研究员,主要从事油气地质调查与资源勘探评价及海洋生物礁成因研究工作. ORCID: 0000-0000-0000-0000. E-mail:qdxhong@163.com

      通讯作者:

      闫琢玉, ORCID: 0009-0003-0362-1857. E-mail:yanzhy3@cnooc.com.cn

      苏大鹏,ORCID: 0000-0000-0000-0000. E-mail: wlmz_008@sina.com

    • 中图分类号: P597

    Characterization of Mg Isotopes in Dolomites and Advances in Island-Basin Studies

    • 摘要: 白云岩发现233年至今,仍然还是基础研究前沿. Mg同位素作为白云岩形成的关键同位素,已在白云岩问题研究中异军突起,发展成新的热点.简介了地质储库中镁和Mg同位素特征,分馏、镁循环和生物成因Mg同位素特征研究的进展. 采集西沙群岛新近纪成礁以来白云岩岩心开展Mg同位素测试,探讨白云岩Mg同位素与流体方向、地层层序的特征,以中国西部沉积盆地油气勘探深层-超深层白云岩Mg同位素储层研究为例,简介了针对深层Mg同位素特征开展储层评价的结论,Mg同位素研究在古海洋重建、全球大陆、海洋和地球内部镁储库及镁循环等领域的相关进展,推进了白云岩前沿问题讨论的进程,强化了对于白云岩形成和机制研究的理解.

       

    • 图  1  不同温度下的热液白云岩和热液流体δ26Mg值

      Fig.  1.  δ26Mg values of hydrothermal dolomites and hydrothermal fluids at different temperatures

      图  2  不同地质储库中的Mg同位素(δ26Mg) 组成

      Fig.  2.  Composition of Mg isotopes (δ26Mg) in major terrestrial materials

      图  3  不同时代白云岩模拟δ26Mg曲线和海水δ26Mg模拟曲线对比图

      Fig.  3.  Comparison of δ26Mg simulated curves of dolomite in different ages and δ26Mg simulated curves of seawater

      图  4  不同白云石化过程中Mg同位素分馏模拟

      a. 白云石化流体垂直向下运移,$ {\delta }^{26}\mathrm{M}\mathrm{g} $随深度变大,流动水模型;b. 白云石化流体侧向运移,$ {\delta }^{26}\mathrm{M}\mathrm{g} $随深度保持不变,流动水模型

      Fig.  4.  Simulation of Mg isotope fractionation in different dolomitization processes

      图  5  塔里木盆地肖尔布拉克西沟剖面下寒武统肖尔布拉克组岩相学、主微量元素、碳、氧同位素与Mg同位素垂向变化趋势图

      Fig.  5.  Vertical variation trend of Lower Cambrian Sholbulak Formation petrography, major and trace elements, carbon, oxygen isotopes and Mg isotopes in Sholbulak Xigou Section, Tarim Basin

      图  6  不同时代白云岩的Mg同位素组成

      Fig.  6.  Mg isotopic compositions of dolomites in different ages

      表  1  非生物和生物成因白云岩-碳酸盐岩δ26Mg数据统计表

      Table  1.   Statistical table of δ26Mg Data for non biogenic and biogenic dolomite carbonate rocks

      非生物-生物δ26Mg宿主 δ26Mg 样品数
      非生物成因 白云岩 3.25‰~-0.38‰
      方解石 -5.57‰~-1.04‰
      洞穴沉积物 -5.14‰~-1.42‰
      文石 -4.22‰~-1.50‰
      生物成因 低镁生物成因碳酸盐岩 浮游有孔虫 -5.54‰~ -4.09‰ 24
      双壳类 -5.07‰~ -3.37‰ 15
      腕足类 -2.29‰~ -1.88‰ 3
      颗石藻 -3.02‰~-1.11‰ 13
      高镁方解石成因碳酸盐岩 底栖有孔虫 -3.67‰~-2.68‰ 6
      硬海绵 -3.26‰~-3.23‰
      红藻 -3.24‰~-2.97‰ 7
      海胆纲动物 -2.75‰~-2.44‰ 8
      软体动物 -2.07‰ 1
      深海珊瑚 -3.45‰~-3.10‰ 13
      硬海绵 -3.26‰~-3.23‰ 2
      文石成因碳酸盐岩 浅海珊瑚 -2.02‰~-1.67‰ 43
      深水珊瑚 -1.83‰~-1.59‰ 6
      软体动物 -2.07‰ 1
      海绵 -3.12‰~-1.50‰ 7
      双壳类 -4.22‰~-1.89‰ 14
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    • Azmy, K., Lavoie, D., Wang, Z. R., et al., 2013. Magnesium-Isotope and REE Compositions of Lower Ordovician Carbonates from Eastern Laurentia: Implications for the Origin of Dolomites and Limestones. Chemical Geology, 356: 64-75. https://doi.org/10.1016/j.chemgeo.2013.07.015
      Albarede, F., Beard, B., 2004. Analytical Methods for Non-Traditional Isotopes. Reviews in Mineralogy and Geochemistry, 55(1): 113-152. https://doi.org/10.2138/gsrmg.55.1.113
      Burns, S. J., McKenzie, J. A., Vasconcelos, C., 2000. Dolomite Formation and Biogeochemical Cycles in the Phanerozoic. Sedimentology, 47(s1): 49-61. https://doi.org/10.1046/j.1365-3091.2000.00004.x
      Brenot, A., Cloquet, C., Vigier, N., et al., 2008. Magnesium Isotope Systematics of the Lithologically Varied Moselle River Basin, France. Geochimica et Cosmochimica Acta, 72(20): 5070-5089. https://doi.org/10.1016/j.gca.2008.07.027
      Catanzaro, E. J., Murphy, T. J., 1966. Magnesium Isotope Ratios in Natural Samples. Journal of Geophysical Research(1896-1977), 71(4): 1271-1274. https://doi.org/10.1029/JZ071i004p01271
      Claudia, G. D. V., Chernonozhkin, S. M., Grigoryan, R., et al., 2020. Characterization of the New Isotopic Reference Materials IRMM-524A and ERM-AE143 for Fe and Mg Isotopic Analysis of Geological and Biological Samples. Journal of Analytical Atomic Spectrometry, 35(11): 2517-2529. https://doi.org/10.1039/D0JA00225A
      Chang, V. T. C., Makishima, A., Belshaw, N. S., et al., 2003. Purification of Mg from Low-Mg Biogenic Carbonates for Isotope Ratio Determination Using Multiple Collector ICP-MS. Journal of Analytical Atomic Spectrometry, 18(4): 296-301. https://doi.org/10.1039/B210977H
      Dong, A. G., Zhu, X. K., 2016. Mg Isotope Geochemical Cycle in Supergene Environment. Advances in Earth Science, 31(1): 43-58(in Chinese with English abstract).
      Fischer, A. G., 1984. The Two Phanerozoic Supercycles. In: Berggren, W. A., Vancouvering, J. A., eds., Catastrophies in Erath History. Princeton University Press, Princeton, 129-148.
      Fantle, M. S., Higgins, J., 2014. The Effects of Diagenesis and Dolomitization on Ca and Mg Isotopes in Marine Platform carbonates: Implications for the Geochemical Cycles of Ca and Mg. Geochimica et Cosmochimica Acta, 142: 458-481. https://doi.org/10.1016/j.gca.2014.07.025
      Fantel, M. S., Barnes, B. D., Lau, K. V., 2020. The Role of Diagenesis in Shaping the Geochemistry of the Marine Carbonate Record. Annual Review of Earth and Planetary Sciences, 48: 549-583. https://doi.org/10.1146/annurev-earth-073019-060021
      Gesker, A., Zorlu, J., Richter, D. K., et al., 2012. Impact of Diagenesis and Low Grade Metamorphosis on Isotope (δ26Mg, δ13C, δ18O and 87Sr/86Sr) and Elemental (Ca, Mg, Mn, Fe and Sr) Signatures of Triassic Sabkha Dolomites. Chemical Geology, 332: 45-64. https://doi.org/10.1016/j.chemgeo.2012.09.014
      Gesker, A., Lokier, S., Dietzel, M., et al., 2015a. Magnesium Isotope Composition of Sabkha Porewater and Related (Sub-)Recent Stoichiometric Dolomites, Abu Dhabi (UAE). Chemical Geology, 393: 112-124. https://doi.org/10.1016/j.chemgeo.2014.11.020
      Gesker, A., Goldstein, R. H., Mavromatis, V., et al., 2015b. The Magnesium Isotope (δ26Mg) Signature of Dolomites. Geochimica et Cosmochimica Acta, 149: 131-151. https://doi.org/10.1016/j.gca.2014.11.003
      Galy, A., Belshaw, N. S., Halicz, L., et al., 2001. High-Precision Measurement of Magnesium Isotopes by Multiple-Collector Inductively Coupled Plasma Mass Spectrometry. International Journal of Mass Spectrometry, 208(1/2/3): 89-98. https://doi.org/10.1016/S1387-3806(01)00380-3
      Galy, A., Bar-Matthews, M., Halicz, L., et al., 2002. Mg Isotopic Composition of Carbonate: Insight from Speleothem Formation. Earth and Planetary Science Letters, 201(1): 105-115. https://doi.org/10.1016/S0012-821X(02)00675-1
      Galy, A., Yoffe, O., Janney, P. E., et al., 2003. Magnesium Isotope Heterogeneity of the Isotopic Standard SRM980 and New Reference Materials for Magnesium-Isotope-Ratio Measurements. Journal of Analytical Atomic Spectrometry, 18(11): 1352-1356. https://doi.org/10.1039/B309273A
      Gao, T., Ke, S., Chen, S. M., et al., 2015. Mg Isotope Fractionation during Dolomite Weathering: Effects on Mg Isotope Composition of Dolomite, Surface Water and Groundwater. Abstracts of the 15th Annual Conference of the Chinese Society of Mineral Petrogeochemistry, 139(in Chinese with English abstract).
      Gothmann, A. M., Stolarski, J., Adkins, J. F., et al., 2017. A Cenozoic Record of Seawater Mg Isotopes in Well-Preserved Fossil Corals. Geology, 45(11): 1039-1042. https://doi.org/10.1130/g39418.1
      Holland, H. D., 2005. Sea Level, Sediments and the Composition of Seawater. American Journal of Science, 305(3): 220-239. https://doi.org/10.2475/ajs.305.3.220
      Hardie, L. A., 1996. Secular Variation in Seawater chemistry: An Explanation for the Coupled Secular Variation in the Mineralogies of Marine Limestones and Potash Evaporites over the Past 600 Ma Geology, 24(3): 279. https://doi.org/10.1130/0091-7613(1996)024<0279:SVISCA>2.3.CO;2 doi: 10.1130/0091-7613(1996)024<0279:SVISCA>2.3.CO;2
      Higgins, J. A., Schrag, D. P., 2010. Constraining Magnesium Cycling in Marine Sediments Using Magnesium Isotopes. Geochimica et Cosmochimica Acta, 74(17): 5039-5053. https://doi.org/10.1016/j.gca.2010.05.019
      Higgins, J. A., Blättler, C. L., Lundstrom, E. A., et al., 2018. Mineralogy, Early Marine Diagenesis, and the Chemistry of Shallow-Water Carbonate Sediments. Geochimica et Cosmochimica Acta, 220: 512-534. https://doi.org/10.1016/j.gca.2017.09.046
      He, X. X., Li, S. Z., Tang, S. H., 2008. Advances in the Study of MgIsotopes Application. Acta Petrologica et Mineralogica, 27(5): 472-476(in Chinese with English abstract). doi: 10.3969/j.issn.1000-6524.2008.05.013
      Handler, M. R., Baker, J. A., Schiller, M., et al., 2009. Magnesium Stable Isotope Composition of Earth's Upper Mantle. Earth and Planetary Science Letters, 282(1/2/3/4): 306-313. https://doi.org/10.1016/j.epsl.2009.03.031
      Huang, F., Glessner, J., Ianno, A., et al., 2009. Magnesium Isotopic Composition of Igneous Rock Standards Measured by MC-ICP-MS. Chemical Geology, 268(1/2): 15-23. https://doi.org/10.1016/j.chemgeo.2009.07.003
      Higgins, J., Fantle, M. S., 2014. The Effects of Diagenesis and Dolomitization on Ca and Mg Isotopes in Marine Platform carbonates: Implications for the Geochemical Cycles of Ca and Mg. Geochimica et Cosmochimica Acta, 142: 458-481. https://doi.org/10.1016/j.gca.2014.07.025
      Hu, Z. Y., Hu, W. X., Wang, X. M., et al., 2017. Resetting of Mg Isotopes between Calcite and Dolomite during Burial metamorphism: Outlook of Mg Isotopes as Geothermometer and Seawater Proxy. Geochimica et Cosmochimica Acta, 208: 24-40. https://doi.org/10.1016/j.gca.2017.03.026
      Hu, Z. Y., Xia, Z. G., Li, C., 2023. The Enigma of Marine Mg/Ca Variations since the Late Cenozoic: Mg Isotope Records from Carbonate Rocks of the South China Sea (SCS) Islands and Reefs. In: Committee on Lithofacies Paleogeography, Chinese Society for Mineralogy, Petrology and Geochemistry; International Society of Palaeogeography (ISP), Committee on Sedimentology, Chinese Society for Mineralogy, Petrology and Geochemistry, Committee on Sedimentary Geology, Chinese Geological Society, eds., Abstracts of the 17th National Conference on Paleogeography and Sedimentology: Poster Abstracts. School of Ocean and Earth Science, Tongji University; School of Earth Sciences and Engineering, Nanjing University, 040256(in Chinese with English abstract).
      Jacobson, A. D., Zhang, Z. F., Lundstrom, C., et al., 2010. Behavior of Mg Isotopes during Dedolomitization in the Madison Aquifer, South Dakota. Earth and Planetary Science Letters, 297(3/4): 446-452. https://doi.org/10.1016/j.epsl.2010.06.038
      Ke, S., Liu, S. A., Li, W. Y., et al., 2011. Recent Advances in Magnesium Isotope Geochemistry and Its Applications. Acta Petrologica Sinica, 27(2): 383-397(in Chinese with English abstract).
      Lowenstein, T. K., Timofeeff, M. N., Brennan, S. T., et al., 2001. Oscillations in Phanerozoic Seawater Chemistry: Evidence from Fluid Inclusions. Science, 294(5544): 1086-1088. https://doi.org/10.1126/science.1064280
      Lavoie, D., Jackson, S., Girard, I., 2014. Magnesium Isotopes in High-Temperature Saddle Dolomite Cements in the Lower Paleozoic of Canada. Sedimentary Geology, 305: 58-68. https://doi.org/10.1016/j.sedgeo.2014.03.002
      Liu, X. Y., Shao, L., Shi, D. F., et al., 2021. Relationship between Elemental Geochemical Characteristics of Xike-1 Well in Xisha Islands and Sea-Level Fluctuations. Marine Geology Frontiers, 37(6): 8-17(in Chinese with English abstract).
      Li, Q., Bao, Z. D., 2023. Tracing the Genesis of Cambrian Xiaqiulitage Formation Dolomite in the Tarim Basin using Mg Isotopes and Stable Mg Isotopic Mechanisms under Tectonic-Hydrothermal Activities. Abstracts of the 17th National Conference on Paleogeography and Sedimentology(in Chinese with English abstract).
      Li, W. Y., Teng, F. Z., Ke, S., et al., 2010. Heterogeneous Magnesium Isotopic Composition of the Upper Continental Crust. Geochimica et Cosmochimica Acta, 74(23): 6867-6884. https://doi.org/10.1016/j.gca.2010.08.030
      Ling, M. X., Sedaghatpour, F., Teng, F. Z., et al., 2011. Homogeneous Magnesium Isotopic Composition of Seawater: an Excellent Geostandard for Mg Isotope Analysis. Rapid Communications in Mass Spectrometry, 25(19): 2828-2836. https://doi.org/10.1002/rcm.5172
      Li, W. Q., Bialik, O. M., Wang, X. M., et al., 2019. Effects of Early Diagenesis on Mg Isotopes in dolomite: The Roles of Mn(Ⅳ)-Reduction and Recrystallization. Geochimica et Cosmochimica Acta, 250: 1-17. https://doi.org/10.1016/j.gca.2019.01.029
      Mavromatis, V., Meister, P., Oelkers, E. H., 2014. Using Stable Mg Isotopes to Distinguish Dolomite Formation mechanisms: A Case Study from the Peru Margin. Chemical Geology, 385: 84-91. https://doi.org/10.1016/j.chemgeo.2014.07.019
      Muller, M. N., Kısakürek, B., Buhl, D., et al., 2011. Response of the Coccolithophores Emiliania Huxleyi and Coccolithus Braarudii to Changing Seawater Mg2+ and Ca2+ concentrations: Mg/Ca, Sr/Ca Ratios and Δ44/40Ca, Δ26/24Mg of Coccolith Calcite. Geochimica et Cosmochimica Acta, 75(8): 2088-2102. https://doi.org/10.1016/j.gca.2011.01.035
      Ning, M., Lang, X. G., Huang, K. J., et al., 2020. Towards Understanding the Origin of Massive Dolostones. Earth and Planetary Science Letters, 545: 116403. https://doi.org/10.1016/j.epsl.2020.116403
      Planchon, F., Poulain, C., Langlet, D., et al., 2013. Mg-Isotopic Fractionation in the Manila Clam (Ruditapes Philippinarum): New Insights into Mg Incorporation Pathway and Calcification Process of Bivalves. Geochimica et Cosmochimica Acta, 121: 374-397. https://doi.org/10.1016/j.gca.2013.07.002
      Peng, Y., Shen, B., Lang, X. G., et al., 2016. Constraining Dolomitization by Mg isotopes: A Case Study from Partially Dolomitized Limestones of the Middle Cambrian Xuzhuang Formation, North China. Geochemistry, Geophysics, Geosystems, 17(3): 1109-1129. https://doi.org/10.1002/2015GC006057
      Qiao, Z. F., Shen, A. J., Liang, F., et al., 2023. Formation Process of Scale buried Dolomite Based on Magnesium Isotope: a Case Study of Penglaiba Formation, Tarim Basin, China. Acta Geologica Sinica, 97(7): 2293-2310(in Chinese with English abstract). doi: 10.3969/j.issn.0001-5717.2023.07.012
      Rosman, K. J. R., Taylor, P. D. P., 1998. Isotopic Compositions of the Elements 1997 (Technical Report). Journal of Physical & Chemical Reference Data, 27: 1275-1287.
      Ra, K., Kitagawa, H., Shiraiwa, Y., 2010a. Mg Isotopes in Chlorophyll: a Coccoliths of Cultured Coccolithophores (Emiliania Huxleyi) by MC-ICP-MS. Marine Chemistry, 122(1/2/3/4): 130-137. https://doi.org/10.1016/j.marchem.2010.07.004
      Ra, K., Kitagawa, H., Shiraiwa, Y., 2010b. Mg Isotopes and Mg/Ca Values of Coccoliths from Cultured Specimens of the Species Emiliania Huxleyi and Gephyrocapsa Oceanica. Marine Micropaleontology, 77(3/4): 119-124. https://doi.org/10.1016/j.marmicro.2010.08.003
      Richter, F. M., Davis, A. M., DePaolo, D. J., et al., 2003. Isotope Fractionation by Chemical Diffusion between Molten Basalt and Rhyolite. Geochimica et Cosmochimica Acta, 67(20): 3905-3923. https://doi.org/10.1016/S0016-7037(03)00174-1
      Ren, M., Jones, B., 2018. Genesis of Island Dolostones. Sedimentology, 65(6): 2003-2033. https://doi.org/10.1111/sed.12455
      Schiller, M., Bizzarro, M., Baker, J. A., 2007. Development of Precise and Accurate Magnesium Isotope Measurements by Multiple-Collector Inductively Coupled Plasma Mass Spectrometry. Workshop on Chronology of Meteorites, 4023.
      Saenger, C., Wang, Z. R., 2014. Magnesium Isotope Fractionation in Biogenic and Abiogenic Carbonates: implications for PaleoenvironmentalProxies. Quaternary Science Reviews, 90: 1-21. https://doi.org/10.1016/j.quascirev.2014.01.014
      Sandberg, P. A., 1983. An Oscillating Trend in Phanerozoic Non-Skeletal Carbonate Mineralogy. Nature, 305(5929): 19-22. https://doi.org/10.1038/305019a0
      Stanley, S. M., Hardie, L. A., 1998. Secular Oscillations in the Carbonate Mineralogy of Reef-Building and Sediment-Producing Organisms Driven by Tectonically Forced Shifts in Seawater Chemistry. Palaeogeography, Palaeoclimatology, Palaeoecology, 144(1/2): 3-19. https://doi.org/10.1016/S0031-0182(98)00109-6
      Spencer, R. J., Hardie, L. A., 1990. Control of Seawater Composition by Mixing of River Waters and Mid-Ocean Ridge Hydrothermal Brines. Spec. Publ. Geochem. Soc. 19: 409-419.
      Simms, M., 1984. Dolomitization by Thermal Convection in Carbonate Platforms: ABSTRACT. AAPGBulletin, 68: AD4611D3-16F7-11D7-8645000102C1865D. https://doi.org/10.1306/ad4611d3-16f7-11d7-8645000102c1865d
      Tipper, E. T., Galy, A., Gaillardet, J., et al., 2006. The Magnesium Isotope Budget of the Modern Ocean: Constraints from Riverine Magnesium Isotope Ratios. Earth and Planetary Science Letters, 250(1/2): 241-253. https://doi.org/10.1016/j.epsl.2006.07.037
      Teng, F. Z., Li, W. Y., Rudnick, R. L., et al., 2010. Contrasting Lithium and Magnesium Isotope Fractionation during Continental Weathering. Earth and Planetary Science Letters, 300(1/2): 63-71. https://doi.org/10.1016/j.epsl.2010.09.036
      Teng, F. Z., 2017. Magnesium Isotope Geochemistry. Reviews in Mineralogy and Geochemistry, 82(1): 219-287. https://doi.org/10.2138/rmg.2017.82.7
      Tipper, E. T., Calmels, D., Gaillardet, J., et al., 2012. Positive Correlation between Li and Mg Isotope Ratios in the River Waters of the Mackenzie Basin Challenges the Interpretation of Apparent Isotopic Fractionation during Weathering. Earth and Planetary Science Letters, 333: 35-45. https://doi.org/10.1016/j.epsl.2012.04.023
      Tang, B., Wang, J. T., Fu, Y., et al., 2020. Magnesium Isotope Composition of Different Geological Reservoirs and Controlling Factors of Magnesium Isotope Fractionation in the Formation of Carbonate Minerals: A Summary of Previous Results. Rock and Mineral Testing, 39(2): 162-173(in Chinese with English abstract).
      Vail, P. R., Mitchum, R. M., Thompson, S., 1977. Seismic Stratigraphy and Global Changes of Sea Level, Part 4: Global Cycles of Relative Changes of Sea Level. Seismic Stratigraphy: Applications to Hydrocarbon Exploration. Mem. Amer. Assac. Petrol. Geol, 1977, 26, 83-97. https://doi.org/10.1306/m26490c6
      Von Strandmann, P. A. E., Forshaw, J., Schmidt, D. N., 2014. Modern and Cenozoic Records of Seawater Magnesium from Foraminiferal Mg Isotopes. Biogeosciences, 11(18): 5155-5168. https://doi.org/10.5194/bg-11-5155-2014
      Vahrenkamp, V. C., Swart, P. K., 1987. Stable Isotopes as Tracers of Fluid/Rock Interactions during Massive PlatformDolomitization, Little Bahama Bank. AAPG Bulletin, 71: 948877DA-1704-11D7-8645000102C1865D. https://doi.org/10.1306/948877da-1704-11d7-8645000102c1865d
      Warren, J., 2000. Dolomite: Occurrence, Evolution and Economically Important Associations. Earth-Science Reviews, 52(1/2/3): 1-81. https://doi.org/10.1016/S0012-8252(00)00022-2
      Wilkinson, B. H., Algeo, T. J., 1989. Sedimentary Carbonate Record of Calcium-Magnesium Cycling. American Journal of Science, 289(10): 1158-1194. https://doi.org/10.2475/ajs.289.10.1158
      Wombacher, F., Eisenhauer, A., Böhm, F., et al., 2011. Magnesium Stable Isotope Fractionation in Marine Biogenic Calcite and Aragonite. Geochimica et Cosmochimica Acta, 75(19): 5797-5818. https://doi.org/10.1016/j.gca.2011.07.017
      Xia, P., Ning, M., Wen, H. G., et al., 2021. Tracing Carbonate Deposition-DiagenesisProcess Using Magnesium Isotopes: Implications for Reconstructing Deep-Time Seawater Magnesium Isotopic Composition. Acta Sedimentologica Sinica, 39(6): 1546-1564(in Chinese with English abstract).
      Xu, H., Cai, F., Wang, Y. J., et al., 1999. Evolution of Miocene Reef in Xisha and Reef-Building byAlgae. Chinese Science Bulletin, 44(13): 1435-1439(in Chinese with English abstract). doi: 10.3321/j.issn:0023-074X.1999.13.017
      Yoshimura, T., Tanimizu, M., Inoue, M., et al., 2011. Mg Isotope Fractionation in Biogenic Carbonates of Deep-Sea Coral, Benthic Foraminifera, and Hermatypic Coral. Analytical and Bioanalytical Chemistry, 401(9): 2755-2769. https://doi.org/10.1007/s00216-011-5264-0
      Young, E. D., Galy, A., 2004. The Isotope Geochemistry and Cosmochemistry of Magnesium. Reviews in Mineralogy and Geochemistry, 55(1): 197-230. https://doi.org/10.2138/gsrmg.55.1.197
      Yang, W., Teng, F. Z., Zhang, H. F., 2009. Chondritic Magnesium Isotopic Composition of the Terrestrial mantle: A Case Study of Peridotite Xenoliths from the North China Craton. Earth and Planetary Science Letters, 288(3/4): 475-482. https://doi.org/10.1016/j.epsl.2009.10.009
      Zhu, G. Y., Li, X., Li, T. T., et al., 2023. Genesis Mechanism and Mg Isotope Difference between the Sinian and Cambrian Dolomites in Tarim Basin. Science China Earth Sciences, 66(2): 334-357. https://doi.org/10.1007/s11430-021-1010-6
      Zhu, G. Y., Li, X., Li, T. T., et al., 2023. Magnesium Isotope Trace Dolomitization Fluid Migration Path: A Case Study of the Carboniferous Huanglong Formation in the Sichuan Basin. Acta Geologica Sinica, 97(3): 753-771(in Chinese with English abstract). doi: 10.3969/j.issn.0001-5717.2023.03.008
      Zenger, D. H., Dunham, J. B., Ethington, R. L., 1982. Concepts and Models of Dolomitization. Sedimentary Geology, 32(1/2): 154-155. https://doi.org/10.1016/0037-0738(82)90020-3
      Zhu, X. K., He, X. X., Yang, C., 2005. Study on Isotopic Heterogeneity of Mg Isotope Standard Reference Material SRM980. Data Collection of National Conference on Isotope Geochronology and Isotope Geochemistry, 12-14(in Chinese with English abstract).
      Zhu, X. K., Wang, Y., Yan, B., et al., 2013. Developments of Non-Traditional Stable Isotope Geochemistry. Bulletin of Mineralogy, Petrology and Geochemistry, 32(6): 651-688(in Chinese with English abstract).
      董爱国, 朱祥坤, 2016. 表生环境中Mg同位素的地球化学循环. 地球科学进展, 31(1): 43-58.
      高庭, 柯珊, 陈寿铭, 等, 2015. 白云岩风化过程中Mg同位素的分馏: 对白云岩、地表水和地下水Mg同位素组成的影响. 中国矿物岩石地球化学学会第15届学术年会论文摘要集, 139.
      何学贤, 李世珍, 唐索寒, 2008. Mg同位素应用研究进展. 岩石矿物学杂志, 27(5): 472-476. doi: 10.3969/j.issn.1000-6524.2008.05.013
      胡忠亚, 夏芝广, 刘传, 2023. 晚新生代以来海洋Mg/Ca变化之谜: 南海岛礁碳酸盐岩的Mg同位素记录. 见: 中国矿物岩石地球化学学会岩相古地理专业委员会, International Society of Palaeogeography (ISP, 国际古地理学会), 中国矿物岩石地球化学学会沉积学专业委员会, 中国地质学会沉积地质专业委员会, 第十七届全国古地理学及沉积学学术会议摘要集: 展板摘要, 同济大学海洋与地球科学学院, 南京大学地球科学与工程学院, 040256.
      柯珊, 刘盛遨, 李王晔, 等, 2011. Mg同位素地球化学研究新进展及其应用. 岩石学报, 27(2): 383-397.
      刘新宇, 邵磊, 史德锋, 等, 2021. 西沙西科1井元素地球化学特征与海平面升降的关系. 海洋地质前沿, 37(6): 8-17.
      李茜, 鲍志东, 2023. 应用Mg同位素示踪塔里木盆地寒武系下丘里塔格组白云岩成因及构造-热液活动下Mg同位素稳定机制. 第17届全国古地理学及沉积学学术会议摘要.
      乔占峰, 沈安江, 梁峰, 等, 2023. 基于Mg同位素的规模埋藏白云岩形成过程——以塔里木盆地蓬莱坝组为例. 地质学报, 97(7): 2293-2310. doi: 10.3969/j.issn.0001-5717.2023.07.012
      唐波, 王景腾, 付勇, 2020. 不同地质储库中的Mg同位素组成及碳酸盐矿物形成过程中的Mg同位素分馏控制因素. 岩矿测试, 39(2): 162-173.
      夏攀, 甯濛, 文华国, 等, 2021. Mg同位素示踪碳酸盐岩沉积-成岩过程——对恢复深时海水Mg同位素组成的启示. 沉积学报, 39(6): 1546-1564.
      许红, 蔡峰, 王玉净, 等, 1999. 西沙中新世生物礁演化与藻类的造礁作用. 科学通报, (13): 1435-1439. doi: 10.3321/j.issn:0023-074X.1999.13.017
      朱光有, 李茜, 李婷婷, 等, 2023. Mg同位素示踪白云化流体迁移路径——以四川盆地石炭系黄龙组为例. 地质学报, 97(3): 753-771. doi: 10.3969/j.issn.0001-5717.2023.03.008
      朱祥坤, 何学贤, 杨淳, 2005. Mg同位素标准参考物质SRM980的同位素不均一性研究. 全国同位素地质年代学、同位素地球化学学术讨论会资料集, 12-14.
      朱祥坤, 王跃, 闫斌, 等, 2013. 非传统稳定同位素地球化学的创建与发展. 矿物岩石地球化学通报, 32(6): 651-688.
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