Radioactive Mineral Distribution on Tin Placer Deposits of Southeast Asia Tin Belt Granite in Bangka Island
Main Article Content
Abstract
Bangka Island is an area rich in primary and secondary tin deposits. Tin deposits are formed around the contact between granite and older rocks, while secondary tin deposits are formed in the modern channels and paleochannels. Many previous researchers have researched radioactive minerals in primary tin deposits and modern channel deposits, but research on radioactive minerals in paleo channel deposits has never been carried out. The characterization of radioactive minerals in paleo channel deposits was done in this study to determine the potency of radioactive minerals in secondary tin deposits by comparing the content of radioactive minerals in paleochannels with modern channels and tin mine tailing deposits. The data used were mineralogical data and radioactivity data, along with the uranium and thorium content of the rocks from several previous studies. Data showed significant mineral content differences in paleo channel, modern channel, and tin mine tailings deposits. Mineral (monazite and zircon) content in tin mine tailing deposits was the highest. Source rocks for the radioactive minerals monazite and zircon are predicted to be the granitic rocks or tourmaline quartz veins of primary tin deposits. The radioactivity value of rocks in the paleo channel is relatively the same as the modern channel, ranging from 20 to 150 c/s. Uranium content in paleo channel is the same as modern channel deposits, ranging from 10 to 15 ppm eU. The thorium content of the rocks in the paleo channel ranges from 1 to 60 ppm eTh, while in the modern channel, it ranges from 1 to 45 ppm eTh. The radioactivity value and uranium content of the rocks are less effective for determining potential areas of radioactive minerals in placer tin deposits. In contrast, data on thorium content are quite effective for determining potential areas of radioactive minerals in placer tin deposits.
Article Details

This work is licensed under a Creative Commons Attribution-ShareAlike 4.0 International License.
1. Introduction
By using or sharing content from EKSPLORIUM - Buletin Pusat Pengembangan Bahan Galian Nuklir ("the Journal"), you agree to follow these Terms and Conditions. The Journal's content is licensed under the Creative Commons Attribution-NonCommercial-ShareAlike (CC BY-NC-SA) license. If you do not agree to these terms, please do not use the content.
2. How You Can Use the Content
-
Share: You can copy, share, and distribute the work, but only for non-commercial purposes.
-
Adapt: You can change, remix, or build on the work, as long as it is for non-commercial purposes and you share it under the same license (CC BY-NC-SA).
3. Attribution (Giving Credit)
When you use or share the content, you must:
-
Give proper credit to the author(s).
-
Mention the title of the work and the journal name.
-
Provide a link to the license (https://creativecommons.org/licenses/by-nc-sa/4.0/).
-
Indicate if you made any changes to the work.
4. Non-Commercial Use
You cannot use the work to make money or for any commercial activities. For example, you cannot sell or use the content in advertisements.
If you want to use the content for commercial purposes, you need to get permission from the author(s) or the publisher.
5. ShareAlike
If you make changes to the content (like creating a new version or remixing it), you must share your new version under the same CC BY-NC-SA license.
6. Exclusions
Some materials in the Journal may have different licenses or restrictions, such as third-party content (like images or datasets). You must respect the rules for those materials.
7. No Warranty
The content is provided "as is." The authors and publisher do not guarantee that the content is error-free or suitable for any specific purpose. Use the content at your own risk.
8. Modifications and Withdrawal of Content
The publisher and authors can update or remove content at any time. If content is removed, the previous versions will still follow these terms.
9. Ethical Use
You must use the content ethically and follow all relevant laws. This includes properly citing the original authors and not misusing the content.
10. Legal Compliance
You are responsible for making sure your use of the content follows the laws of your country. If you believe content violates your rights, please contact us.
11. Changes to Terms
These Terms and Conditions may be updated from time to time. Any changes will be posted on the Journal's website.
12. Contact Information
For questions about these Terms or for permission to use content commercially, please contact us at:
-
Email: eksplorium@brin.go.id
-
Website: https://ejournal.brin.go.id/eksplorium
Conclusion
By using the content from EKSPLORIUM - Buletin Pusat Pengembangan Bahan Galian Nuklir, you agree to follow these Terms and Conditions and the CC BY-NC-SA 4.0 International License.
References
D. Purbasari, R. Pebrianto, Syarifudin, and E. Oktarinasari, “Potential for Mining Monazite Minerals from Tin Processing Waste in the Bangkla Belitung Islands,” in AVoER XIII National Seminar, 2021.
A. Tampubolon, I. Syafri, M. F. Rosana, and E. T. Yuningsih, “The Occurrence of Primary REE Minerals and Their Para genesis within S-Type Granite and Quartz Vein, South Bangka, Bangka Belitung Islands, Indonesia,” J. Electr. Electron. Eng., vol. 1, no. 1, pp. 64–86, 2022, doi: 10.3390/min10110965.This.
K. Zglinicki, R. Małek, K. Szamałek, and S. Wołkowicz, “Mining Waste as a Potential Additional Source of HREE and U for the European Green Deal: A Case Study of Bangka Island (Indonesia),” Minerals, vol. 12, no. 44, pp. 1–25, 2022.
B. S. Van Gosen, P. L. Verplanck, R. Seal II, K. R. Long, and J. Gambogi, Rare-earth elements, chap. O of Schulz, K.J., DeYoung, J.H., Jr., Seal, R.R., II, and Bradley, D.C., eds., Critical mineral resources of the United States— Economic and environmental geology and prospects for future supply: U.S. Geological Survey Professi. Virginia, 2017.
T. O’Leary, “Iluka Resources: Bank of America Global Metals, Mining & Steel Conference,” Iluka Resource, 2021. https://iluka.com/media/5isevgxe/presentation-to-boa-global-metals-mining-steel-conference.pdf (accessed Oct. 11, 2023).
A. Yaraghi, K. S. Ariffin, and N. Baharun, “Geochemistry and mobility of REE associated with weathered lateritic tin-granite profile,” J. Malaysian Crit. Met., vol. 1, pp. 39–45, 2016.
R. Pitaloka, A. Saepuloh, and S. Sugiharto, “Investigation of paleochannel identification using radar and optical images on placer deposits in Bangka Barat Regency, Indonesia,” Ris. Geol. dan Pertamb., vol. 32, no. 2, pp. 71–81, 2022, doi: 10.14203/risetgeotam2022.v32.1183.
U. Kamiludin, N. C. D. Aryanto, A. W. Pertala, and M. Zulfikar, “Paleo Channel Indication As Place of Placer Minerals and Rare Earth Elements in Tanjung Berikat Waters and Surrounding, Central Bangka, Bangka Belitung,” J. Geol. Kelaut., vol. 16, no. 2, pp. 115–124, 2018.
U. Margono, R. J. B. Supandjono, and E. Partoyo, “Peta Geologi Lembar Bangka Selatan, Sumatera Skala 1:250.000,” Bandung, 1995.
S. A. Mangga and B. Djamal, “Peta Geologi Lembar Bangka Utara, Sumatera 1:250.000,” Bandung, 1994.
Ngadenin et al., “Internal Report of the Nuclear Geology Development Center, Jakarta: Inventory of Thorium Resource Potential in the Central Bangka and Pangkal Pinang Regions, Bangka Belitung,” Jakarta, 2010.
Ngadenin, “Distribution of Monazite in Granite and Alluvial in South Bangka,” J. Pengemb. Energi Nukl., vol. 13, no. 2, pp. 102–110, 2011.
Ngadenin, R. Fauzi, and Widodo, “Identification Of Accessory Mineral Occurrence And Content Estimation of Monazite In Tin Mine Tailings In Bangka Island,” Bul. Sumber Daya Geol., vol. 17, no. 2, pp. 97–108, 2022.
M. Cuney, “Felsic magmatism and uranium deposits,” Bull. la Soc. Geol. Fr., vol. 185, no. 2, pp. 75–92, 2014, doi: 10.2113/gssgfbull.185.2.75.
K. D. Saksama and Ngadenin, “Geology of Muntok Area and the potency of Menumbing Granite as sources of uranium (U) and thorium (Th),” Eksplorium, vol. 34, no. 2, pp. 137–149, 2013.
Ngadenin, F. D. Indrastomo, and Widodo, “Identification of the Occurrence of Thorium in the Pangkal Pinang and Surrounding Areas, Bangka Belitung Province,” in Proceedings of the Meeting and Scientific Presentation of Basic Research on Nuclear Science and Technology - Center for Accelerator Science and Technology, 2018.
Syafrizal et al., “Characterization of Tin Incorporated Minerals in Primary, Secondary and Tailings Deposits in South Bangka and Belitung,” in Proceedings of TPT XXVIII PERHAPI, 2019.
R. Jevvanu, “Geology and the Occurrence of Tin-bearing Minerals and Associated Minerals in Deposits Placed in Air Belo Village and Its Surroundings, Muntok District, West Bangka Regency, Islands Province,” Universitas Gadjah Mada, 2021.
Ngadenin and A. J. Karunianto, “Identification of the Occurrence of Radioactive Minerals in Muncung Granite as an Initial Stage for Assessment of Uranium and Thorium Prospects on Singkep Island,” Eksplorium, vol. 37, no. 2, pp. 63–72, 2018.
H. Syaeful, L. Subiantoro, and Suprapto, “Initial Assessment of Uranium and Thorium Prospect in South Bangka Area” internal report, Centre Development Nuclear Geology,” Jakarta, 2009.
B. Soetopo, L. Subiantoro, P. Sularto, and D. Haryanto, “Study of Monazite Deposits in Quaternary Rocks in the Cerucuk Belitung Area,” Eksplorium, vol. 33, no. 1, pp. 25–40, 2012.
Ngadenin, “Determination of the Distribution of Uranium and Thorium Favorable Zones on Bangka Island,” Jakarta, 2016.
B. L. Dickson and K. M. Scott, “Interpretation of Aerial Gamma Ray Surveys – Adding the Geochemical Factors,” J. Aust. Geol. Geophys. Geophys., vol. 17, no. 2, pp. 187–200, 1997.