
Paper Publications
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[1] Zhu, E.-L., Xia, Q.-X.*, Chen, Y.-X., Chen, R.-X., Shu, H-H, Li, Z-Y, Zheng, Y-F., 2025. Fe isotope decoding of fluid-absent versus fluid-present melting of deeply subducted continental crust. Geology, 53, 924-928.
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[2] Zhu, E.-L., Xia, Q.-X.*, Li, Z.-Y., Shu, H.-H., 2025. Significant Mg isotope disequilibrium during crustal anatexis: Implications for heterogeneous Mg isotopic compositions in the continental crust. Geochimica et Cosmochimica Acta, https://doi.org/10.1016/j.gca.2025.09.041.
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[3] Yu, Y.-J., Chen, R.-X.*, Xia, Q.-X.*, Mu, Z.-H., Yin, Z.-Z., Sun, G.-C., 2025. Accessory minerals fingerprint post-collisional anatectic metamorphism in continental collision zones. Lithos 492-493, 107875.
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[4] Li, Z.-Y., Zhang, X.-H., Sun, G.-C.*, Gu, H., Xia, Q.-X.*, Dai, L.-Q., Huo, J.-J., Zhao, Z.-F., 2025. A rapid method separating Magnesium, Iron and Calcium from low-Mg rocks for precise measurement via MC-ICP-MS. J. Anal. At. Spectrom., , DOI: 10.1039/D5JA00362H
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[5] 夏琼霞,朱二林,束浩鸿,陈仁旭, 2025.地壳深熔过程中矿物行为对同位素组成变化的影响.岩石学报41, 3180-3189.
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[6] Zhang, T.-Y., Xia, Q.-X.*, Yang, X.Y.*, Zhao, Z., Sun, J.D., Zha, X.-P., Lu, Y.Y., 2024. The petrogenesis and metallogenesis of the ore-forming granites in the Tongmukeng Sn deposit, Jiangnan Orogenic Belt, South China. Ore Geology Reviews, 168, 106016.
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[7] Zhu, E.-L., Xia, Q.-X.*, Zhang, S.-B., Van Orman, J., Chen, R.-X., Li, Z.-Y., Gao, P., 2024. Zirconium isotope tracing of the magmatic-hydrothermal transition. Geochimica et Cosmochimica Acta 380, 194-207.
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[8] Zhu, E.-L., Xia, Q.-X.*, Li, Z.-Y., Chen, R.-X., Van Orman, J., 2024. Zircon Zr isotope fractionation during crustal anatexis. Science China Earth Sciences 67, 2495-2506.
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[9] Li, Z.-Y., Xia, Q.-X.*, Liu, Y.-X., 2023. Multiple generations of garnet, zircon and titanite: Temporal constraints on Fe skarn mineralization in the Middle-Lower Yangtze River Valley Metallogenic Belt, eastern China. Lithos 440-441, 107028.
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[10] Xia, Q.-X.*, Yu, M., Zhu, E.-L., Chen, R.-X., Li, W.-C., Zheng, Y.-F., Zhao, Z.-F. Li, Z.-Y, 2023. Two generations of crustal anatexis in association with two-stage exhumation of ultrahigh-pressure metamorphic rocks in the Dabie orogen. Lithos, 446-447, 107146.
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[11] Luo, X., Xia, Q.X.*, Zheng, Y.-F., Li, W.-C. Li., 2022. An experimental study of partial melting of metafelsic rocks: Constraints on the feature of anatectic melts and the origin of garnets in collisional orogens. Journal of Earth Science 33, 753-769.
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[12] Xia, Q.X.*, Chen, Y.-X., Chen, R.-X., Zheng, Y.-F., 2022. Elevation of zircon Hf isotope ratios during crustal anatexis: Evidence from migmatites close to the eastern Himalayan syntaxis in southeastern Tibet. Lithos 412-413, 106592.
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[13] Yu, M., Xia, Q.-X.*, Zheng, Y.-F., Zhao, Z.-F., Chen, Y.-X., Chen, R.-X., Luo, X., Li, W.-C., Xu, H., 2021. The composition of garnet in granite and pegmatite from the Gangdese orogen in southeastern Tibet: constraints on pegmatite petrogenesis. American Mineralogist 106, 265-281..American Mineralogist.2021,106:265-281
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[14] Xia, Q.-X.*, Gao, P., Yang, G., Zheng, Y.-F., Zhao, Z.-F., Li, W.-C., Luo, X., 2019. The Origin of garnets in Anatectic Rocks from the Eastern Himalayan Syntaxis, Southeastern Tibet: Constraints from Major and Trace Element Zoning and Phase Equilibrium Relationships. Journal of Petrology, 60, 2241-2280.
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[15] Xia, Q.-X.*, Zhou, L.-G., 2017. Different origins of garnet in high pressure to ultrahigh pressure metamorphic rocks. Journal of Asian Earth Sciences 145, 130-148..2017,145:130-148
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