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Huang, Chuanfu; Kresin, Vitaly V. (јун 2016). „Note: Contamination-free loading of lithium metal into a nozzle source”. Review of Scientific Instruments (на језику: енглески). 87 (6): 066105. Bibcode:2016RScI...87f6105H. ISSN0034-6748. PMID27370506. doi:10.1063/1.4953918.CS1 одржавање: Формат датума (веза)
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Chong Liu; Yanbin Li; Dingchang Lin; Po-Chun Hsu; Bofei Liu; Gangbin Yan; Tong Wu Yi Cui; Steven Chu (2020). „Lithium Extraction from Seawater through Pulsed Electrochemical Intercalation”. Joule. 4 (7): 1459—1469. Bibcode:2020Joule...4.1459L. S2CID225527170. doi:10.1016/j.joule.2020.05.017.
Tsuyoshi Hoshino (2015). „Innovative lithium recovery technique from seawater by using world-first dialysis with a lithium ionic superconductor”. Desalination. 359: 59—63. Bibcode:2015Desal.359...59H. doi:10.1016/j.desal.2014.12.018.
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Marcelo Azevedo; Nicolò Campagnol; Toralf Hagenbruch; Ken Hoffman; Ajay Lala; Oliver Ramsbottom (јун 2018). „Lithium and cobalt – a tale of two commodities”. McKinsey. стр. 9. Архивирано из оригинала 11. 12. 2019. г. Приступљено 29. 1. 2020.CS1 одржавање: Формат датума (веза)
meridian-int-res.com
Garrett, Donald (2004). Handbook of Lithium and Natural Calcium., Academic Press, cited in The Trouble with Lithium 2Архивирано 14 јул 2011 на сајту Wayback Machine, Meridian International Research (2008)
„The Trouble with Lithium 2”(PDF). Meridian International Research. 2008. Архивирано из оригинала(PDF) 14. 7. 2011. г. Приступљено 29. 9. 2010.CS1 одржавање: Формат датума (веза)
Bliss, Dominic (28. 5. 2021). „National Geographic”. In Cornwall, ruinous tin and copper mines are yielding battery-grade lithium. Here's what that means. Архивирано из оригинала 13. 6. 2021. г. Приступљено 13. 6. 2021.CS1 одржавање: Формат датума (веза)
Huang, Chuanfu; Kresin, Vitaly V. (јун 2016). „Note: Contamination-free loading of lithium metal into a nozzle source”. Review of Scientific Instruments (на језику: енглески). 87 (6): 066105. Bibcode:2016RScI...87f6105H. ISSN0034-6748. PMID27370506. doi:10.1063/1.4953918.CS1 одржавање: Формат датума (веза)
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AppendixesАрхивирано 6 новембар 2011 на сајту Wayback Machine. By USGS definitions, the reserve base "may encompass those parts of the resources that have a reasonable potential for becoming economically available within planning horizons beyond those that assume proven technology and current economics. The reserve base includes those resources that are currently economic (reserves), marginally economic (marginal reserves), and some of those that are currently subeconomic (subeconomic resources)."
DodaciАрхивирано на сајту Wayback Machine (6. новембар 2011); Po definicijama USGS, bazne rezerve obuhvataju one dijelove resursa koji imaju dovoljan potencijal da postanu ekonomski dostupne u okviru planiranih nivoa a izvan onih koji pretpostavljaju dokazane tehnologije i trenutne ekonomije. Bazna rezerva uključuje one resurse koji su trenutno ekonomični (rezerve), granično ekonomični (granične rezerve) i neke od onih koji su trenutno neekonomični (subekonomski resursi).
„Lithium”(PDF). USGS. Архивирано(PDF) из оригинала 1. 11. 2020. г. Приступљено 15. 11. 2020.CS1 одржавање: Формат датума (веза)
vanderkrogt.net
elements.vanderkrogt.net
van der Krogt, Peter. „Lithium”. Elementymology & Elements Multidict. Архивирано из оригинала 16. 6. 2011. г. Приступљено 5. 10. 2010.CS1 одржавање: Формат датума (веза)
AppendixesАрхивирано 6 новембар 2011 на сајту Wayback Machine. By USGS definitions, the reserve base "may encompass those parts of the resources that have a reasonable potential for becoming economically available within planning horizons beyond those that assume proven technology and current economics. The reserve base includes those resources that are currently economic (reserves), marginally economic (marginal reserves), and some of those that are currently subeconomic (subeconomic resources)."
Sonzogni, Alejandro. „Interactive Chart of Nuclides”. National Nuclear Data Center: Brookhaven National Laboratory. Архивирано из оригинала 23. 7. 2007. г. Приступљено 6. 6. 2008.CS1 одржавање: Формат датума (веза)
DodaciАрхивирано на сајту Wayback Machine (6. новембар 2011); Po definicijama USGS, bazne rezerve obuhvataju one dijelove resursa koji imaju dovoljan potencijal da postanu ekonomski dostupne u okviru planiranih nivoa a izvan onih koji pretpostavljaju dokazane tehnologije i trenutne ekonomije. Bazna rezerva uključuje one resurse koji su trenutno ekonomični (rezerve), granično ekonomični (granične rezerve) i neke od onih koji su trenutno neekonomični (subekonomski resursi).
Woo, Marcus (21. 2. 2017). „The Cosmic Explosions That Made the Universe”. earth. BBC. Архивирано из оригинала 21. 2. 2017. г. Приступљено 21. 2. 2017. „A mysterious cosmic factory is producing lithium. Scientists are now getting closer at finding out where it comes from”CS1 одржавање: Формат датума (веза)
Garrett, Donald (2004). Handbook of Lithium and Natural Calcium., Academic Press, cited in The Trouble with Lithium 2Архивирано 14 јул 2011 на сајту Wayback Machine, Meridian International Research (2008)
„The Trouble with Lithium 2”(PDF). Meridian International Research. 2008. Архивирано из оригинала(PDF) 14. 7. 2011. г. Приступљено 29. 9. 2010.CS1 одржавање: Формат датума (веза)
Bliss, Dominic (28. 5. 2021). „National Geographic”. In Cornwall, ruinous tin and copper mines are yielding battery-grade lithium. Here's what that means. Архивирано из оригинала 13. 6. 2021. г. Приступљено 13. 6. 2021.CS1 одржавање: Формат датума (веза)
Berzelius (1817). „Ein neues mineralisches Alkali und ein neues Metall” [A new mineral alkali and a new metal]. Journal für Chemie und Physik. 21: 44—48. Архивирано из оригинала 3. 12. 2016. г.CS1 одржавање: Формат датума (веза) From p. 45: "Herr August Arfwedson, ein junger sehr verdienstvoller Chemiker, der seit einem Jahre in meinem Laboratorie arbeitet, fand bei einer Analyse des Petalits von Uto's Eisengrube, einen alkalischen Bestandtheil, … Wir haben es Lithion genannt, um dadurch auf seine erste Entdeckung im Mineralreich anzuspielen, da die beiden anderen erst in der organischen Natur entdeckt wurden. Sein Radical wird dann Lithium genannt werden." (Mr. August Arfwedson, a young, very meritorious chemist, who has worked in my laboratory for a year, found during an analysis of petalite from Uto's iron mine, an alkaline component … We've named it lithion, in order to allude thereby to its first discovery in the mineral realm, since the two others were first discovered in organic nature. Its radical will then be named "lithium".)
van der Krogt, Peter. „Lithium”. Elementymology & Elements Multidict. Архивирано из оригинала 16. 6. 2011. г. Приступљено 5. 10. 2010.CS1 одржавање: Формат датума (веза)
See:
Arfwedson, Aug. (1818) „Afhandlingar i fysik, kemi och mineralogi”. 1818. Архивирано из оригинала 25. 11. 2017. г. Приступљено 27. 7. 2017.CS1 одржавање: Формат датума (веза)CS1 одржавање: BOT: статус параметра оригинални-URL непознат (веза)
Gmelin, C. G. (1818). „Von dem Lithon” [On lithium]. Annalen der Physik. 59 (7): 238—241. Bibcode:1818AnP....59..229G. doi:10.1002/andp.18180590702. Архивирано из оригинала 9. 11. 2015. г. „p. 238 Es löste sich in diesem ein Salz auf, das an der Luft zerfloss, und nach Art der Strontiansalze den Alkohol mit einer purpurrothen Flamme brennen machte. (There dissolved in this [solvent; namely, absolute alcohol] a salt that deliquesced in air, and in the manner of strontium salts, caused the alcohol to burn with a purple-red flame.)”CS1 одржавање: Формат датума (веза)
Brande, William Thomas (1821). A Manual of Chemistry., 2nd ed. London, England: John Murray, vol. 2, Brande, William Thomas (1821). „A manual of chemistry”. Архивирано из оригинала 19. 1. 2023. г. Приступљено 13. 8. 2015.CS1 одржавање: Формат датума (веза)CS1 одржавање: BOT: статус параметра оригинални-URL непознат (веза)
„The Quarterly journal of science and the arts”. The Quarterly Journal of Science and the Arts. Royal Institution of Great Britain. 5: 338. 1818. Архивирано из оригинала 13. 3. 2021. г. Приступљено 5. 10. 2010.CS1 одржавање: Формат датума (веза)
„Greenbushes Lithium Mine”. Golden Dragon Capital (на језику: енглески). Архивирано из оригинала 19. 1. 2019. г. Приступљено 18. 1. 2019.CS1 одржавање: Формат датума (веза)
Halpern, Abel (30. 1. 2014). „The Lithium Triangle”. Latin Trade. Архивирано из оригинала 10. 6. 2018. г.CS1 одржавање: Формат датума (веза)
Marcelo Azevedo; Nicolò Campagnol; Toralf Hagenbruch; Ken Hoffman; Ajay Lala; Oliver Ramsbottom (јун 2018). „Lithium and cobalt – a tale of two commodities”. McKinsey. стр. 9. Архивирано из оригинала 11. 12. 2019. г. Приступљено 29. 1. 2020.CS1 одржавање: Формат датума (веза)
Price, Austin (лето 2021). „The Rush for White Gold”. Earth Island Journal. Архивирано из оригинала 29. 10. 2021. г. Приступљено 29. 10. 2021.CS1 одржавање: Формат датума (веза)
Bradley, C. C.; Sackett, C. A.; Tollett, J. J.; Hulet, R. G. (1995). „Evidence of Bose-Einstein Condensation in an Atomic Gas with Attractive Interactions”. Physical Review Letters. 75 (9): 1687—1690. PMID10060366. doi:10.1103/PhysRevLett.75.1687. hdl:1911/79442.
Huang, Chuanfu; Kresin, Vitaly V. (јун 2016). „Note: Contamination-free loading of lithium metal into a nozzle source”. Review of Scientific Instruments (на језику: енглески). 87 (6): 066105. Bibcode:2016RScI...87f6105H. ISSN0034-6748. PMID27370506. doi:10.1063/1.4953918.CS1 одржавање: Формат датума (веза)
Addison, C. C. (1984). The chemistry of the liquid alkali metals. Chichester [West Sussex]: Wiley. ISBN978-0-471-90508-0. OCLC10751785.
Nichols, Michael A.; Williard, Paul G. (1993-02-01). „Solid-state structures of n-butyllithium-TMEDA, -THF, and -DME complexes”. Journal of the American Chemical Society. 115 (4): 1568—1572. ISSN0002-7863. doi:10.1021/ja00057a050.
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Schwindeman, James A.; Woltermann, Chris J.; Letchford, Robert J. (2002). „Safe handling of organolithium compounds in the laboratory”. Chemical Health and Safety. 9 (3): 6—11. ISSN1074-9098. doi:10.1016/S1074-9098(02)00295-2.