סוללת יון-סודיום (Hebrew Wikipedia)

Analysis of information sources in references of the Wikipedia article "סוללת יון-סודיום" in Hebrew language version.

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  • Peters, Jens F.; Peña Cruz, Alexandra; Weil, Marcel (2019). "Exploring the Economic Potential of Sodium-Ion Batteries". Batteries (באנגלית). 5 (1): 10. doi:10.3390/batteries5010010free{{cite journal}}: תחזוקה - ציטוט: postscript (link)
  • Abraham, K. M. (2020). "How Comparable Are Sodium-Ion Batteries to Lithium-Ion Counterparts?". ACS Energy Letters. 5 (11): 3544–3547. doi:10.1021/acsenergylett.0c02181free{{cite journal}}: תחזוקה - ציטוט: postscript (link)
  • Marc Walter; Maksym V. Kovalenko; Kostiantyn V. Kravchyk (2020). "Challenges and benefits of post-lithium-ion batteries". New Journal of Chemistry. 44 (5): 1678. doi:10.1039/C9NJ05682Cfree{{cite journal}}: תחזוקה - ציטוט: postscript (link)
  • Sun, Yang-Kook; Myung, Seung-Taek; Hwang, Jang-Yeon (2017-06-19). "Sodium-ion batteries: present and future". Chemical Society Reviews. 46 (12): 3529–3614. doi:10.1039/C6CS00776G. ISSN 1460-4744. PMID 28349134free{{cite journal}}: תחזוקה - ציטוט: postscript (link)
  • Yabuuchi, Naoaki; Kubota, Kei; Dahbi, Mouad; Komaba, Shinichi (2014-12-10). "Research Development on Sodium-Ion Batteries". Chemical Reviews. 114 (23): 11636–11682. doi:10.1021/cr500192f. ISSN 0009-2665. PMID 25390643.
  • Nayak, Prasant Kumar; Yang, Liangtao; Brehm, Wolfgang; Adelhelm, Philipp (2018). "From Lithium-Ion to Sodium-Ion Batteries: Advantages, Challenges, and Surprises". Angewandte Chemie International Edition (באנגלית). 57 (1): 102–120. doi:10.1002/anie.201703772. ISSN 1521-3773. PMID 28627780.
  • Dahn, J. R.; Stevens, D. A. (2000-04-01). "High Capacity Anode Materials for Rechargeable Sodium‐Ion Batteries". Journal of the Electrochemical Society. 147 (4): 1271–1273. Bibcode:2000JElS..147.1271S. doi:10.1149/1.1393348. ISSN 0013-4651.
  • Barker, J.; Saidi, M. Y.; Swoyer, J. L. (2003-01-01). "A Sodium-Ion Cell Based on the Fluorophosphate Compound NaVPO4 F". Electrochemical and Solid-State Letters. 6 (1): A1–A4. doi:10.1149/1.1523691. ISSN 1099-0062.
  • Jache, Birte; Adelhelm, Philipp (2014). "Use of Graphite as a Highly Reversible Electrode with Superior Cycle Life for Sodium-Ion Batteries by Making Use of Co-Intercalation Phenomena". Angewandte Chemie International Edition. 53 (38): 10169–10173. doi:10.1002/anie.201403734. ISSN 1521-3773. PMID 25056756.
  • Senguttuvan, Premkumar; Rousse, Gwenaëlle; Seznec, Vincent; Tarascon, Jean-Marie; Palacín, M.Rosa (2011-09-27). "Na2Ti3O7: Lowest Voltage Ever Reported Oxide Insertion Electrode for Sodium Ion Batteries". Chemistry of Materials. 23 (18): 4109–4111. doi:10.1021/cm202076g. ISSN 0897-4756.
  • Rudola, Ashish; Saravanan, Kuppan; Mason, Chad W.; Balaya, Palani (2013-01-23). "Na2Ti3O7: an intercalation based anode for sodium-ion battery applications". Journal of Materials Chemistry A. 1 (7): 2653–2662. doi:10.1039/C2TA01057G. ISSN 2050-7496.
  • Rudola, Ashish; Sharma, Neeraj; Balaya, Palani (2015-12-01). "Introducing a 0.2V sodium-ion battery anode: The Na2Ti3O7 to Na3−xTi3O7 pathway". Electrochemistry Communications. 61: 10–13. doi:10.1016/j.elecom.2015.09.016. ISSN 1388-2481.
  • Ceder, Gerbrand; Liu, Lei; Twu, Nancy; Xu, Bo; Li, Xin; Wu, Di (2014-12-18). "NaTiO2: a layered anode material for sodium-ion batteries". Energy & Environmental Science. 8 (1): 195–202. doi:10.1039/C4EE03045A. ISSN 1754-5706.
  • Kamiyama, Azusa; Kubota, Kei; Igarashi, Daisuke; Youn, Yong; Tateyama, Yoshitaka; Ando, Hideka; Gotoh, Kazuma; Komaba, Shinichi (בדצמבר 2020). "MgO‐Template Synthesis of Extremely High Capacity Hard Carbon for Na‐Ion Battery". Angewandte Chemie International Edition. 60 (10): 5114–5120. doi:10.1002/anie.202013951. PMC 7986697. PMID 33300173free {{cite journal}}: (עזרה)תחזוקה - ציטוט: postscript (link)
  • Komaba, Shinichi; Yamada, Yasuhiro; Usui, Ryo; Okuyama, Ryoichi; Hitomi, Shuji; Nishikawa, Heisuke; Iwatate, Junichi; Kajiyama, Masataka; Yabuuchi, Naoaki (ביוני 2012). "P2-type Nax[Fe1/2Mn1/2]O2 made from earth-abundant elements for rechargeable Na batteries". Nature Materials. 11 (6): 512–517. Bibcode:2012NatMa..11..512Y. doi:10.1038/nmat3309. ISSN 1476-4660. PMID 22543301. {{cite journal}}: (עזרה)
  • Keller, Marlou; Buchholz, Daniel; Passerini, Stefano (2016). "Layered Na-Ion Cathodes with Outstanding Performance Resulting from the Synergetic Effect of Mixed P- and O-Type Phases". Advanced Energy Materials. 6 (3): 1501555. doi:10.1002/aenm.201501555. ISSN 1614-6840. PMC 4845635. PMID 27134617.
  • Bauer, Alexander; Song, Jie; Vail, Sean; Pan, Wei; Barker, Jerry; Lu, Yuhao (2018). "The Scale-up and Commercialization of Nonaqueous Na-Ion Battery Technologies". Advanced Energy Materials. 8 (17): 1702869. doi:10.1002/aenm.201702869. ISSN 1614-6840free{{cite journal}}: תחזוקה - ציטוט: postscript (link)

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  • Kendrick, E.; Gruar, R.; Nishijima, M.; Mizuhata, H.; Otani, T.; Asako, I.; Kamimura, Y. “Tin-Containing Compounds”. United States Patent No. US 10,263,254. Issued April 16, 2019; Filed by Faradion Limited and Sharp Kabushiki Kaisha on May 22, 2014.

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