Balaram, V.; Satyanarayanan, M.; Ray, Labani (2026) Worldwide geothermal systems as potential sources for critical metals like lithium, rare earth elements, and others. Geoscience Frontiers, 17 (5). doi:10.1016/j.gsf.2026.102337
| Reference Type | Journal (article/letter/editorial) | ||
|---|---|---|---|
| Title | Worldwide geothermal systems as potential sources for critical metals like lithium, rare earth elements, and others | ||
| Journal | Geoscience Frontiers | ||
| Authors | Balaram, V. | Author | |
| Satyanarayanan, M. | Author | ||
| Ray, Labani | Author | ||
| Year | 2026 (September) | Volume | 17 |
| Issue | 5 | ||
| Publisher | Elsevier BV | ||
| DOI | doi:10.1016/j.gsf.2026.102337Search in ResearchGate | ||
| Generate Citation Formats | |||
| Mindat Ref. ID | 20006715 | Long-form Identifier | mindat:1:5:20006715:9 |
| GUID | 0 | ||
| Full Reference | Balaram, V.; Satyanarayanan, M.; Ray, Labani (2026) Worldwide geothermal systems as potential sources for critical metals like lithium, rare earth elements, and others. Geoscience Frontiers, 17 (5). doi:10.1016/j.gsf.2026.102337 | ||
| Plain Text | Balaram, V.; Satyanarayanan, M.; Ray, Labani (2026) Worldwide geothermal systems as potential sources for critical metals like lithium, rare earth elements, and others. Geoscience Frontiers, 17 (5). doi:10.1016/j.gsf.2026.102337 | ||
| In | (2026, September) Geoscience Frontiers Vol. 17 (5). Elsevier BV | ||
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![]() | Taussi, Marco, Nisi, Barbara, Pizarro, Marcela, Morata, Diego, Veloso, Eugenio A., Volpi, Gianni, Vaselli, Orlando, Renzulli, Alberto (2019) Sealing capacity of clay-cap units above the Cerro Pabellón hidden geothermal system (northern Chile) derived by soil CO2 flux and temperature measurements. Journal of Volcanology and Geothermal Research, 384. 1-14 doi:10.1016/j.jvolgeores.2019.07.009 |
| Not Yet Imported: Handbook on the Physics and Chemistry of Rare Earths - book-chapter : 10.1016/S0168-1273(88)11011-8 If you would like this item imported into the Digital Library, please contact us quoting Book ID 9780444870803 | |
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![]() | Tiwari, Sameer K., Rai, Santosh K., Bartarya, Sukesh K., Gupta, Anil K., Negi, Manju (2016) Stable isotopes (δ 13 C DIC , δD, δ 18 O) and geochemical characteristics of geothermal springs of Ladakh and Himachal (India): Evidence for CO 2 discharge in northwest Himalaya. Geothermics, 64. 314-330 doi:10.1016/j.geothermics.2016.06.012 |
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| Not Yet Imported: Resources, Conservation and Recycling - journal-article : 10.1016/j.resconrec.2021.105514 If you would like this item imported into the Digital Library, please contact us quoting Journal ID | |
| Torres (2014) , 72 | |
| Toprak (2024) Heliyon Lithium extraction from geothermal brine using γ-MnO2: A case study for Tuzla geothermal power plant 10 | |
| Utama (2025) Eksplorium Rare Earth Elements (REEs) potential in active geothermal systems: A global review and regional study at Mount Slamet, Indonesia 46, 15 | |
| Ventura, S., Bhamidi, S., Hornbostel, M., Nagar, A., 2018. Selective Recovery of Lithium from Geothermal Brines. In: Proc. 43rd Workshop on Geothermal Reservoir Engineering. Stanford University, Stanford, California, 12-14, SGP-TR-213. | |
| Not Yet Imported: Nature Reviews Earth & Environment - journal-article : 10.1038/s43017-022-00387-5 If you would like this item imported into the Digital Library, please contact us quoting Journal ID | |
| Vidal (2024) GRC Transactions How important is the hydrothermal alteration in the Upper Rhine Graben for geothermal lithium assessment? 48 | |
![]() | Wang, XiaoYuan, Zeng, ZhiGang, Chen, Shuai, Yin, XueBo, Chen, Chen-Tung Arthur (2013) Rare earth elements in hydrothermal fluids from Kueishantao, off northeastern Taiwan: Indicators of shallow-water, sub-seafloor hydrothermal processes. Chinese Science Bulletin, 58 (32). 4012-4020 doi:10.1007/s11434-013-5849-4 |
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![]() | Wassihun, Simeneh, Alemu, Abera, Nigussie, Wubamlak, Mickus, Kevin, Workie, Melak Desta, Wuletawu, Habtamu, Wendwesen, Shimels, Yehualaw, Esubalew (2025) Application of surface and subsurface anomaly linkage in geothermal resource evaluation: A case study of the Corbetti geothermal prospect, main Ethiopian rift. Geothermics, 125. doi:10.1016/j.geothermics.2024.103191 |
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![]() | Wei, Shuaichao, Liu, Feng, Zhang, Wei, Zhang, Hanxiong, Zhao, Jiayi, Liao, Yuzhong, Yan, Xiaoxue (2022) Typical geothermal waters in the Ganzi–Litang fault, western Sichuan, China: hydrochemical processes and the geochemical characteristics of rare-earth elements. Environmental Earth Sciences, 81 (23) doi:10.1007/s12665-022-10652-x |
| Not Yet Imported: - journal-article : 10.1016/j.adapen.2023.100148 If you would like this item imported into the Digital Library, please contact us quoting Journal ID | |
| Wilde (2021) Mali. Ore Geol. Rev. Geology of the Goulamina spodumene pegmatite field 134 | |
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| Wolf (2015) GRC Transactions Sarulla 330 MW geothermal project key success factors in development 39, 907 | |
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| Wu (2025) Sep. Purif. Technol. Direct and highly efficient lithium extraction from real oilfield brine via a selective TOP-FeCl3 system 363 | |
| Not Yet Imported: - journal-article : 10.1111/gwat.12011 If you would like this item imported into the Digital Library, please contact us quoting Journal ID | |
| Not Yet Imported: Geothermal Fields of India - book-chapter : 10.1007/978-3-031-53364-8_6 If you would like this item imported into the Digital Library, please contact us quoting Book ID 9783031533631 | |
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| Not Yet Imported: - report : 10.2172/1501682 If you would like this item imported into the Digital Library, please contact us quoting Journal ID | |
| Zhang (2025) Nat. Commun. Lithium-ion battery recycling relieves the threat to material scarcity amid China’s electric vehicle ambitions 16, 6661 | |
| Not Yet Imported: - journal-article : 10.1016/j.cclet.2016.01.037 If you would like this item imported into the Digital Library, please contact us quoting Journal ID | |
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