عمیدی، س. م.، شهرابی، م. و نوایی، م.، 1384، نقشه زمینشناسی 1:100000 زاویه، سازمان زمین شناسی و اکتشافات معدنی کشور.
گودرزی، م.، زمانیان، ح.، کلوتزلی، ا.، 1403الف، زمینشیمی، سنگشناسی و جایگاه تکتونوماگمایی گدازههای آتشفشانی ائوسن در جنوب مامونیه،کمان ماگمایی ارومیه-دختر، استان مرکزی، ایران. مجله پترولوژی، شماره 15 (1)، صفحه 85-116. https://doi.org/10.22108/ijp.2024.139861.1315
گودرزی، م.، زمانیان، ح.، کلوتزلی، ا.، 1403ب، الگوی کانیزایی مس بر اساس دادههای کانیشناسی، دگرسانی، زمینشیمی و میانبارهای سیال در جنوب مامونیه، بخش میانی کمربند ماگمایی ارومیه- دختر، ایران. فصلنامه علمی علوم زمین، 34(3)، 133، صفحه 35-62. https://doi.org/10.22071/gsj.2024.424348.2122
گودرزی، م.، زمانیان، ح.، کلوتزلی، ا.، لنتز، د.، یولله، م.، 1403پ، کاربرد شیمی مگنتیت- تیتانومگنتیت در درک فرایندهای کانه ساز: بررسی موردی سامانه کانیسازی مس مأمونیه، کمربند ماگمایی ارومیه- دختر. مجله زمینشناسی اقتصادی، شماره 17 دوره 1، صفحه 1-32. https://doi.org/10.22067/econg.2025.1125
گودرزی، م.، زمانیان، ح.، کلوتزلی، ا.، 1404الف، بررسی ژئوشیمی و جایگاه زمینساختی-ماگمایی تودههای نفوذی نیمهژرف در جنوب مامونیه، بخش میانی کمربند ماگمایی ارومیه- دختر، ایران. فصلنامه علمی علوم زمین، 35(1)، 135، صفحه 85-116. https://doi.org/10.22071/gsj.2024.447739.2139.
گودرزی، م.، زمانیان، ح.، کلوتزلی، ا.، یولله، م.، 1404پ، ترکیب شیمیایی پیریت های گرمابی، شاخصی برای تفسیر فرایندهای کانهساز: بررسی موردی کانسار مس مأمونیه، کمان ماگمایی ارومیه- دختر. مجله زمینشناسی اقتصادی، شماره 17 دوره 2، صفحه 1-26. https://doi.org/10.22067/econg.2025.1131.
نوگل سادات، م.ع.ا. و هوشمند زاده، ع.ر.،1363، نقشه و گزارش زمینشناسی ساوه در مقیاس 1:250،000 ، سازمان زمینشناسی و اکتشافات معدنی کشور.
Ageeva, O., Habler, G., Pertsev, A., and Abart, R., 2017. Fe–Ti oxide micro-inclusions in clinopyroxene of oceanic gabbro: Phase content, orientation relations and petrogenetic implications. Lithos, 290–291, 104–115. https://doi.org/10.1016/j.lithos.2017.08.007.
Aoki, K.-I., and Shiba I., 1973. Pyroxenes from lherzolite inclusions of Itinome-gata, Japan. Lithos, 6, 41–51. https://doi.org/10.1016/0024-4937(73)90078-9.
Allen, M., Jackson, J., and Walker, R., 2004. Late Cenozoic reorganization of the Arabia–Eurasia collision and the comparison of short-term and long-term deformation rates. Tectonics, 23, TC2008. https://doi.org/10.1029/2003TC001530.
Amidi, S. M., Shahrabi, M., and Navai, I., 2004, Geological Map of Zaviyeh. Geological Survey of Iran: Tehran, Iran, 2004, No. 6160. (In Persian).
Aparicio, A., 2010. Relationship between clinopyroxene composition and the formation environment of volcanic host rocks. The IUP Journal of Earth Sciences 4(3), 34–44. https://ssrn.com/abstract=1632135.
Arculus, R.J., 2006. Supra-subduction zone pyroxenites from San Jorge and Santa Isabel (Solomon Islands). Journal of Petrology, 47(12), 2431–2464. https://doi.org/10.1093/petrology/egl019
Babazadeh, S., D'Antonio, M., Cottle, J.M., Ghalamghash, J., Raeisi, D., and An, Y., 2021. Constraints from geochemistry, zircon U-Pb geochronology and Hf-Nd isotopic compositions on the origin of Cenozoic volcanic rocks from central Urumieh-Dokhtar magmatic arc, Iran. Gondwana Research 90, 27–46. https://doi.org/10.1016/j.gr.2020.10.010.
Babazadeh, S., Furman, T., Santosh, M., Raeisi, D., Choi, S.H., and D'Antonio, M., 2024. Middle to Late Miocene K-rich magmatism in Central Iran: Geochemical characterization of the post-collision mantle beneath the Urumieh–Dokhtar magmatic arc. Chemical Geology 665, 122308. https://doi.org/10.1016/j.chemgeo.2024.122308.
Babazadeh, S., Ghorbani, M.R., Bröcker, M., D'Antonio, M., Cottle, J.M., Gebbing, T., Carmine Mazzeo, F., and Ahmadi, P. 2017. Late Oligocene–Miocene mantle upwelling and interaction inferred from mantle signatures in gabbroic to granitic rocks from the Urumieh–Dokhtar arc, south Ardestan, Iran. International Geology Review 59, 1590–1608. https://doi.org/10.1080/00206814.2017.1286613.
Babazadeh, S., Ghorbani, M.R., Cottle, J.M., and Bröcker, M. 2019. Multi-stage tectono-magmatic evolution of the central Urumieh-Dokhtar magmatic arc, south Ardestan, Iran: Insights from zircon geochronology and geochemistry. Geological Journal 54(4), 2447–2471. https://doi.org/10.1002/gj.3306.
Babazadeh, S., Haase, K., Ghalamghash, J., Regelous, M., Poujol, M., Raeisi, D., Zhao, M., 2023. Magmatic evolution of the migrating central Urumieh–Dokhtar arc, Iran: Implications for magma production. Int. J. Earth Sci. 112, 1577–1597. https://doi.org/10.1007/s00531-023-02314-5.
Beccaluva, L., Macciotta, G., Piccardo, G., and Zeda, O., 1989. Clinopyroxene composition of ophiolite basalts as petrogenetic indicator. Chemical Geology 77, 165–182.
Berberian, M., and King, G.C.P., 1981. Towards a paleogeography and tectonic evolution of Iran. Canadian Journal of Earth Sciences 18, 210–265.
Bertrand, P., and Mercier, J.C., 1985. The mutual solubility of coexisting ortho and clinopyroxene: Toward an absolute geothermometer for natural systems? Earth and Planetary Science Letters 76, 109–122.
Botcharnikov, R.E., Koepke, J., Holtz, F., McCammon, C., and Wilke, M., 2005. The effect of water activity on the oxidation and structural state of Fe in a ferro-basaltic melt. Geochim. Cosmochim. Acta 69: 5071–5085, https://doi.org/10.1016/j.gca.2005.04.023.
Caillat, C., Dehlavi, P., and Martel Jantin, B., 1978. Géologie de la région de Saveh (Iran): Contribution à l'étude du volcanisme et du plutonisme tertiaires de la zone de l'Iran central. Minéralogie. Université Scientifique et Médicale de Grenoble, Français.
Cameron, M., and Papike, J. J., 1981. Structural and chemical variations in pyroxenes. American Mineralogist 66, 1–50.
Chiu, H.Y., Chung, S.L., Zarrinkoub, M.H., Mohammadi, S.S., Khatib, M.M., and Iizuka, Y., 2013. Zircon U–Pb age constraints from Iran on the magmatic evolution related to Neotethyan subduction and Zagros orogeny. Lithos 162–163, 70–87. https://doi.org/10.1016/j.lithos.2013.01.006.
Davidson, P.M., 1985. Thermodynamic analysis of quadrilateral pyroxenes. Part 1: derivation of the ternary nonconvergent site-disorder model. Contribution to Mineralogy and Petrology 91, 383–389.
DeBari, S.M., and Coleman, R.G., 1989. Examination of the deep levels of an island arc: Evidence from the Tonsina ultramafic-mafic assemblage, Tonsina, Alaska. J. Geophys. Res. Solid Earth 94(B4), 4373–4391. https://doi.org/10.1029/JB094iB04p04373.
Droop, G. T. R., 1987. A general equation for estimating Fe3+ concentrations in ferromagnesian silicates and oxides from microprobe analyses, using stoichiometric criteria. Mineralogical Magazine, 51 (361) 431-435 https://doi.org/10.1180/minmag.1987.051.361.10.
Elthon, D., 1987. Petrology of gabbroic rocks from the Mid-Cayman Rise spreading center. Journal of Geophysical Research Solid Earth, 92(B1), 658–682. https://doi.org/10.1029/JB092iB01p00658.
Fazli, N., Ghaderi, M., Movahednia, M., Li, J.W., Lentz, D.R., and Yan, S., 2022. Geology and genesis of the North Narbaghi Cu-Ag deposit in the Urumieh-Dokhtar magmatic arc, Iran: fluid inclusion and stable isotope constraints. Ore Geology Reviews. 144, 104801. https://doi.org/10.1016/j.oregeorev.2022.104801.
Fazli, N., Ghaderi, M., Tajeddin, H.A., and Movahednia, M., 2024. Genesis of the Hajibolagh-Zalibolagh Cu-(Ag) intermediate-sulfidation epithermal deposit, Urumieh-Dokhtar magmatic arc, Iran: Evidence from ore geology, fluid inclusions, and stable isotopes. Ore Geology Reviews, Volume 169, https://doi.org/10.1016/j.oregeorev.2024.106086.
France, L., Ildefonse, B., Koepke, J., and Bech, F., 2010. A new method to estimate the oxidation state of basaltic series from microprobe analyses. Journal of Volcanology and Geothermal Research 189(3), 340-346.
Ghasemi, A., and Talbot, C.J., 2007. A new tectonic scenario for the Sanandaj-Sirjan Zone (Iran). Journal of Asian Earth Sciences, 26(6), 683–693. https://doi.org/10.1016/j.jseaes.2005.01.003.
Ghorbani, M.R., Graham, I.T., and Ghaderi, M., 2014. Oligocene-Miocene geodynamic evolution of the central part of Urumieh-Dokhtar arc of Iran. International Geology Review 56(8), 1039–1050. https://doi.org/10.1080/00206814.2014.919615.
Goudarzi, M., Zamanian, H., and Klötzli, U. 2024a. Geochemistry, petrography, and tectono-magmatic setting of Eocene volcanic lavas in the south of Mamoniyeh, Urumieh-Dokhtar magmatic arc, Markazi Province, Iran. Petrological Journal 15(1), 85-116. doi: 10.22108/ijp.2024.139861.1315. (In Persian).
Goudarzi, M., Zamanian, H., and Klötzli, U., 2024b. Copper Mineralization Pattern Based on Mineralogy, Alteration, Geochemistry of Intrusive Rocks and Fluid Inclusion in the South of Mamuoniyeh, Middle Part of Urumieh-Dokhtar Magmatic Arc, Iran. Sci. Q. J Geosci. 34(3), 133, https://doi.org/10.22071/gsj.2024.424348.2122. (In Persian).
Goudarzi, M., Zamanian, H., and Klötzli, U., 2025b. Geochemistry and Tectono-Magmatic Setting of Hypabyssal Intrusive Rocks in the South of Mamouniyeh, Urumieh-Dokhtar Magmatic Arc, Iran. Sci. Q. J. Geosci. 35 (1), 129–148. https://doi.org/10.22071/gsj.2024.447739.2139. (In Persian).
Goudarzi, M., Zamanian, H., Klötzli, U., Lentz, D., and Ullah, M., 2024c. Genesis of the Mamuniyeh Copper Deposit in the Central Urumieh-Dokhtar Magmatic Arc, Iran: Constraints from Geology, Geochemistry, Fluid Inclusions, and H–O–S Isotopes. Ore Geol. Rev. 175, 106279. https://doi.org/10.1016/j.oregeorev.2024.106279.
Goudarzi, M., Zamanian, H., Klötzli, U., Lentz, D., Ullah, M., 2025c. Constraining Ore-Forming Processes Using Magnetite-Titanomagnetite Chemistry: A Case Study of the Mamuniyeh Cu Mineralization System, Urumieh-Dokhtar Magmatic Arc. J. Econ. Geol. 17(1), 1-32. https://doi.org/10.22067/econg.2025.1125. (In Persian).
Goudarzi, M., Zamanian, H., Klötzli, U., Sláma, J., Míková, J., Burda, J., Lentz, D.R., Ullah, M., and Homnan, J., 2025a. Unraveling the Protracted Magmatic Evolution in the Central Urumieh–Dokhtar Magmatic Arc (Northeast Saveh, Iran): Zircon U-Pb Dating, Lu-Hf Isotopes, and Geochemical Constraints. Minerals 15, 375. https://doi.org/10.3390/min15040375.
Goudarzi, M., Zamanian, H., Klötzli, U., Ullah, M., 2025d. Chemical Composition of Hydrothermal Pyrite as an Indicator for Deciphering Ore-Forming Processes: A Case Study from the Mamuniyeh Copper Deposit, UDMA. Journal of Economic Geology, 17(2), 45, P. 1-26. 10.22067/econg.2025.1131(In Persian).
Goudarzi, M., Zamanian, H., Klötzli, U., and Ullah, M., 2024d. Evidence of Boiling in Ore Forming Process Based on Quartz Textures and Fluid Inclusions Studies, a Case Study in Mamouniyeh Cu Deposit, Iran. In Proceedings of the EGU General Assembly 2024, Vienna, Austria, 14–19 April 2024d; 24-8552. https://doi.org/10.5194/egusphere-egu24-8552.
Helz, R. T., 1973. Phase relations of basalts in their melting ranges at pH₂O = 5 kb as a function of oxygen fugacity. Part I: Mafic phases. Journal of Petrology, 14(2), 249–302. https://doi.org/10.1093/petrology/14.2.249.
Jones, P. R., Davis, S., and Lee, H., 2015. Thermobarometric applications of clinopyroxene–melt equilibria: A MELTS model approach. Contributions to Mineralogy and Petrology, 170(6), 87.
Kazemi, K., Kananian, A., Xiao, Y., and Sarjoughian, F. 2019. Petrogenesis of middle-Eocene granitoids and their mafic microgranular enclaves in Central Urmia-Dokhtar Magmatic Arc (Iran): Evidence for interaction between felsic and mafic magmas. Geoscience Frontiers 10(2), 705–723. https://doi.org/10.1016/j.gsf.2018.04.006.
Kretz, R. 1994. Metamorphic Crystallization. John Wiley & Sons, New York, 507p.
Le Bas, M.J., 1962. The Role of Aluminium in Igneous Clinopyroxenes with Relation to Their Parentage. American Journal of Science 260(4), 267-288.
Leroux, H., Jacob, D., Marinova, M., Hewins, R.H., Zanda, B., Pont, S., Lorand, J.-P., and Humayun, M., 2016. Exsolution and shock microstructures of igneous pyroxene clasts in the Northwest Africa 7533 Martian meteorite. Meteoritics & Planetary Science, 51, 932–945. https://doi.org/10.1111/maps.12629.
Leterrier, J., Maury, R.C., Thonon, P., Girard, D., and Marchal, M., 1982. Clinopyroxene compositions as a method of identification of magmatic affinities of paleo-volcanic series. Earth and Planetary Science Letters 59, 139–154. https://doi.org/10.1016/0012-821X(82)90122-4.
Liotard, J.M., Briot, D., and Boivin, P., 1988. Petrological and geochemical relationships between pyroxene megacrysts and associated alkalibasalts from Massif Central (France). Contribution to Mineralogy and Petrology 98, 81–90. https://doi.org/10.1007/BF00371912.
Lloyd, A. S., Ferriss, E., Ruprecht, P., Hauri, E. H., Jicha, B. R., and Plank, T. 2016. An assessment of clinopyroxene as a recorder of magmatic water and magma ascent rate. Journal of Petrology, 57(10), 1865–1886. https://doi.org/10.1093/petrology/egw058.
Lucci, F., Rossetti, F., White, J.C., Moghadam, H.S., Shirzadi, A., and Nasrabady, M., 2016. Tschermak fractionation in calc-alkaline magmas: the Eocene Sabzevar volcanism (NE Iran). Arabian Journal of Geosciences 9, 573. https://doi.org/10.1007/s12517-016-2598-0.
Moghadam, H.S., Li, Q.L., Li, X.H., Stern, R.J., Levresse, G., Santos, J.F., Lopez Martinez, M., Ducea, M.N., Ghorbani, G., and Hassannezhad, A., 2020. Neotethyan Subduction Ignited the Iran Arc and Back-arc Differently. Journal of Geophysical Research: Solid Earth 125. https://doi.org/10.1029/2019JB018460.
Moradi, S., Ghorbani, M.R., Jiang, S.Y., and Christiansen, E.H., 2021. Mafic to intermediate composition intrusions from the Kahak area, central Urumieh-Dokhtar arc of Iran: Transition from Eocene to Miocene intra-arc extensional magmatism. Mineralogy and Petrology 115(1–2). https://doi.org/10.1007/s00710-021-00745-z.
Moretti, R., 2005. Polymerisation, basicity, oxidation state and their role in ionic modelling of silicate melts. Annals of Geophysics, https://doi.org/10.4401/ag-3221.
Morley, C.K., Kongwung, B., Julapour, A., Abdolghafourian, M., Hajian, M., Waples, D., Warren, J., Otterdoom, H., Srisuriyon, K., and Kazemi, H., 2009. Structural development of a major late Cenozoic basin and transpressional belt in central Iran: The Central Basin in the Qom–Saveh area. Geosphere, 5(4), 325–362. https://doi.org/10.1130/GES00223.1.
Morimoto, N., Fabrise, J., Ferguson, A., Ginzburg, I. V., Ross, M., Seifert, F.A., Zussman, J., Akoi, K., and Gottardi, G., 1988. Nomenclature of pyroxenes. American Mineralogist 173, 1123-1133.
Nimis, P., and Taylor, W., 2000. Single clinopyroxene thermobarometry for garnet peridotites. Part I. Calibration and testing of a Cr-in-Cpx barometer and an enstatite-in-Cpx thermometer. Contribution to Mineralogy and Petrology 139, 541–554. https://doi.org/10.1007/s004100000156.
Nimis, P. A. 1995. clinopyroxene geobarometer for basaltic systems based on crystal-structure modeling. Contrib Mineral Petrol 121, 115–125. https://doi.org/10.1007/s004100050093.
Nisbet, E.G., and Pearce, J.A., 1977. Clinopyroxene composition in mafic lavas from different tectonic settings. Contributions to Mineralogy and Petrology 63(2), 149–160. https://doi.org/10.1007/BF00398776.
Nogol Sadat, M.A.A., and Houshmandzadeh, A.R., 1984. 1:250,000 Geological map of Saveh. Geological Survey of Iran. (In Persian).
Nouri, N., Azizi, H., Stern, R., Asahara, Y., Khodaparast, S., Madanipour, S., and Yamamoto, K., 2018. Zircon U-Pb dating, geochemistry and evolution of the Late Eocene Saveh magmatic complex, central Iran: partial melts of sub-continental lithospheric mantle and magmatic differentiation. Lithos 314–315, 274–292. https://doi.org/10.1016/j.lithos.2018.06.013.
Omrani, J., Agard, P., Whitechurch, H., Benoit, M., Prouteau, G., and Jolivet, L. 2008. Arc-Magmatism and Subduction History beneath the Zagros Mountains, Iran: A New Report of Adakites and Geodynamic Consequences. Lithos 106, 380–398. https://doi.org/10.1016/j.lithos.2008.09.008.
Papike, J. J., Cameron, K. L., and Baldwin, K., 1974. Amphiboles and pyroxenes: characterization of other than quadrilateral components and estimates of ferric iron from microprobe data. In Geological Society of America, Abstracts with Programs, 6: 1053-1054, ID (NAID):10026533544.
Parlak, O., Bağci, U., Rizaoğlu, T., Ionescu, C., Onal, G., Hock, V., and Kozlu, H., 2020. Petrology of ultramafic to mafic cumulate rocks from the Goksun (Kahramanmaraş) ophiolite, southeast Turkey. Geoscience Frontiers 11, 109–128. https://doi.org/10.1016/j.gsf.2018.11.004.
Pearce, J. A., and Cann, J. R., 1973. Tectonic setting of basic volcanic rocks determined using trace element analyses. Earth and Planetary Science Letters, 19, 290–300. https://doi.org/10.1016/0012-821X(73)90129-5.
Philpotts, A. R., and Ague, J. J., 2009. Principles of Igneous and Metamorphic Petrology (2nd ed.). Cambridge University Press. https://doi.org/10.1017/CBO9780511813429.
Putrika, K.D., 2008. Thermometers and Barometers for Volcanic Systems. Reviews in Mineralogy and Geochemistry 69: 61-120, https://doi.org/10.2138/rmg.2008.69.3.
Raeisi, D., Babazadeh, S., Long, L. E., Zhao, M., Cottle, J. M., Nayebi, N., Modabberi, S., 2024. Geochemical and Isotopic Signatures, and Zircon U–Pb Ages of the Oldest Known Intrusive Rocks Associated with Porphyry Cu Deposits in the Central Urumieh–Dokhtar Magmatic Arc, Iran. J. Geochem. Explor. 2024, 256, 107366. https://doi.org/10.1016/j.gexplo.2023.107366.
Rajesh, H.M., 2006. Progressive or continual exsolution in pyroxenes: An indicator of polybaric igneous crystallization for the Perinthatta anorthositic gabbro, northern Kerala, southwestern India. Journal of Asian Earth Sciences, 26(5), 541–553. https://doi.org/10.1016/j.jseaes.2004.11.004.
Rezaei Kahkhaei, M., Esmaili, D., and Francisco, C.G., 2014. Geochemical and isotopic (Nd and Sr) constraints on elucidating the origin of intrusions from northwest Saveh, Central Iran. Geopersia 4 (1), 103-123. https://doi.org/10.22059/jgeope.2014.51195.
Richards, J.P., and Sholeh, A., 2016. The Tethyan tectonic history and Cu-Au metallogeny of Iran. In: Richards, J.P. (Ed.), Tectonics and Metallogeny of the Tethyan Orogenic Belt. Society of Economic Geologists Special Publication 19, 193–212. https://doi.org/10.5382/SP.19.07.
Sarjoughian, F., and Kananian, A., 2017. Zircon U–Pb geochronology and emplacement history of intrusive rocks in the Ardestan section, Central Iran. Geologica Acta 15(1), 25–36. https://doi.org/10.1344/GeologicaActa2017.15.1.3.
Schweitzer, E.L., Papike, J.J., and Bence, A.E., 1979. Statistical analysis of clinopyroxenes from deep-sea basalts. American Mineralogist 64: 501-513, https://doi.org/10.1016/0198-0254%2879%2990762-3.
Shafaii Moghadam, H., Khademi, M., Hu, Z., Stern, R.J., Santos, J.F., and Wu, Y., 2015. Cadomian (Ediacaran–Cambrian) arc magmatism in the ChahJam–Biarjmand metamorphic complex (Iran): magmatism along the northern active margin of Gondwana. Gondwana Research 27, 439–452. https://doi.org/10.1016/j.gr.2013.10.014.
Shafaii Moghadam, H., Li, Q.L., Li, X.H., Chiaradia, M., Karsli, O., Hoernle, K.A., and Griffin, W.L., 2023. Mantle-derived high-K magmatic fluxes in northeast Iran arc: Constraints from zircon U-Pb-O-Hf and bulk rock major-trace elements and Sr-Nd-Pb isotopes. Gondwana Research, 119, 1–26. https://doi.org/10.1016/j.gr.2023.02.021.
Smith, J., Brown, L., and White, M., 2010. Experimental constraints on pyroxene crystallization in basaltic magmas. Journal of Petrology, 51(3), 567–589.
Soesoo, A., 1997. A multivariate statistical analysis of clinopyroxene composition: empirical coordinates for the crystallisation PT-estimation. Geological Society of Sweden (Geologiska Föreningen) 119, 55–60.
van der Boon, A., Naudé, M.N., Callegaro, S., Monsef, I., Rezaeian, M., Niknam, A., Cotton, L.J., le Roux, P., Kriegsman, L.M., Mason, P.R.D., and Langereis, C.G., 2024. Propagating Neotethys slab break-off beneath Iran following Arabia-Eurasia collision. Lithos Volumes 482–483, 107737. https://doi.org/10.1016/j.lithos.2024.107737.
Verdel, C., Wernicke, B.P., Hassanzadeh, J., and Guest, B., 2011. A Paleogene extensional arc flare-up in Iran. Tectonics 30, 3008–3302.
Wang, X., Hou, T., Wang, M., Zhang, Ch., Zhang, Zh., Pan, R., Marxer, F., and Zhang, H., 2021. A new clinopyroxene thermobarometer for mafic to intermediate magmatic systems. European Journal of Mineralogy 33, 621–637. https://doi.org/10.5194/ejm-33-621-2021.
Wang, Z., Zhao, Z., Wan, Y., Li, X., Meng, Y., Liu, D., Mo, X., and Cong, F., 2023. The initial slab rollback of Neo-Tethys Ocean: Constrain from Gongga adakitic rocks and enclaves in the late Cretaceous. Lithos 440–441, 107050. https://doi.org/10.1016/j.lithos.2023.107050.
Weis, F. A., Schiano, P., Skogby, H., and Stalder, R., 2015. Magmatic water contents determined through clinopyroxene: Examples from the Western Canary Islands, Spain. Geochemistry Geophysics Geosystems, 16. https://doi.org/10.1002/2015GC005800.
Wieser, P.E., Kent, A.J.R., Till, C.B., Donovan, J., Neave, D.A., Blatter, D.L., and Krawczynski, M.J., 2023. Barometers Behaving Badly I: Assessing the Influence of Analytical and Experimental Uncertainty on Clinopyroxene Thermobarometry Calculations at Crustal Conditions. Journal of Petrology 64, 1–27. https://doi.org/10.1093/petrology/egac126.
Yeganehfar, H., Ghorbani, M.R., Shinjo, R., and Ghaderi, M., 2013. Magmatic and geodynamic evolution of Urumieh-Dokhtar basic volcanism, Central Iran: major, trace element, isotopic and geochronologic implications. International Geology Review 55, 767–786. https://doi.org/10.1080/00206814.2012.752554.
Zamanian, H., Dolatshahi, S., Yang, X., Karimzadeh, S.A., and Meshkani, S.A., 2021. Geochemical, fluid inclusion and O-H-S isotope constraints on the origin of the Rangraz copper deposit, Central Iran. Ore Geology Reviews 128, 103877. https://doi.org/10.1016/j.oregeorev.2020.103877.