Natrium-Ionen-Akkumulator (German Wikipedia)

Analysis of information sources in references of the Wikipedia article "Natrium-Ionen-Akkumulator" in German language version.

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3sat.de

  • nano vom 7. Februar 2022.

businesswire.com

catl.com

doi.org

  • Verònica Palomares, Paula Serras, Irune Villaluenga, Karina B. Hueso, Javier Carretero-González, Teófilo Rojo: Na-ion batteries, recent advances and present challenges to become low cost energy storage systems. In: Energy and Environmental Science. Band 5, Februar 2012, S. 5884–5901, doi:10.1039/c2ee02781j.
  • Dominique Larcher, Jean-Marie Tarascon: Towards greener and more sustainable batteries for electrical energy storage. In: Nature Chemistry. Band 7, Nr. 1. Springer Nature, Januar 2015, ISSN 1755-4330, S. 19–29, doi:10.1038/nchem.2085 (nature.com).
  • Jens F. Peters, Alexandra Peña Cruz, Marcel Weil: Exploring the Economic Potential of Sodium-Ion Batteries. In: Batteries. Band 5, Nr. 1, 2019, S. 10, doi:10.3390/batteries5010010 (mdpi.com [abgerufen am 19. Oktober 2020]).
  • Huilin Pan, Yong-Sheng Hu, Liquan Chen: Room-temperature stationary sodium-ion batteries for large-scale electric energy storage. In: Energy and Environmental Science. Band 6, Juni 2013, S. 2338–2360, doi:10.1039/c3ee40847g.
  • Jang-Yeon Hwang, Seung-Taek Myung, Yang-Kook Sun: Sodium-ion batteries: present and future. In: Chemical Society Reviews. Band 46, Nr. 12, Juni 2017, S. 3529–3614, doi:10.1039/C6CS00776G.
  • Gebrekidan Gebresilassie Eshetu, Sylvie Grugeon, Huikyong Kim, Sangsik Jeong, Liming Wu: Comprehensive Insights into the Reactivity of Electrolytes Based on Sodium Ions. In: ChemSusChem. Band 9, Nr. 5, 8. März 2016, ISSN 1864-5631, S. 462–471, doi:10.1002/cssc.201501605 (wiley.com [abgerufen am 20. Oktober 2020]).
  • Yi Sun, Pengcheng Shi, Hongfa Xiang, Xin Liang, Yan Yu: High-Safety Nonaqueous Electrolytes and Interphases for Sodium-Ion Batteries. In: Small. Band 15, Nr. 14, 2019, ISSN 1613-6829, S. 1805479, doi:10.1002/smll.201805479 (wiley.com [abgerufen am 20. Oktober 2020]).
  • Seongwook Chae, Taewoong Lee, Woong Kwon, Haisu Kang, Hyeok Jun Seo, Eunji Kim, Euigyung Jeong, Jin Hong Lee, Seung Geol Lee: Longitudinally grown pyrolyzed quinacridones for sodium-ion battery anode. In: Chemical Engineering Journal. Band 453, 1. Februar 2023, ISSN 1385-8947, S. 139805, doi:10.1016/j.cej.2022.139805 (sciencedirect.com [abgerufen am 15. April 2023]).

elektroniknet.de

eon.de

golem.de

handelsblatt.com

heise.de

iea.org

mdpi.com

  • Jens F. Peters, Alexandra Peña Cruz, Marcel Weil: Exploring the Economic Potential of Sodium-Ion Batteries. In: Batteries. Band 5, Nr. 1, 2019, S. 10, doi:10.3390/batteries5010010 (mdpi.com [abgerufen am 19. Oktober 2020]).

natron.energy

nature.com

notebookcheck.com

orf.at

photovoltaik.eu

pv-magazine.com

rbb24.de

  • Maren Schibilsky: Berliner Forscher entwickeln Batterien für die Zukunft. RBB, 6. März 2024;: „"Man kann diese Batterien auf denselben Produktionsanlagen produzieren wie Lithium-Ionen-Batterien", sagt Adelhelm. […] Professor für Elektrochemie Philipp Adelhelm […] der Humboldt-Universität“

sciencedirect.com

  • Seongwook Chae, Taewoong Lee, Woong Kwon, Haisu Kang, Hyeok Jun Seo, Eunji Kim, Euigyung Jeong, Jin Hong Lee, Seung Geol Lee: Longitudinally grown pyrolyzed quinacridones for sodium-ion battery anode. In: Chemical Engineering Journal. Band 453, 1. Februar 2023, ISSN 1385-8947, S. 139805, doi:10.1016/j.cej.2022.139805 (sciencedirect.com [abgerufen am 15. April 2023]).

spiegel.de

wiley.com

chemistry-europe.onlinelibrary.wiley.com

  • Gebrekidan Gebresilassie Eshetu, Sylvie Grugeon, Huikyong Kim, Sangsik Jeong, Liming Wu: Comprehensive Insights into the Reactivity of Electrolytes Based on Sodium Ions. In: ChemSusChem. Band 9, Nr. 5, 8. März 2016, ISSN 1864-5631, S. 462–471, doi:10.1002/cssc.201501605 (wiley.com [abgerufen am 20. Oktober 2020]).

onlinelibrary.wiley.com

  • Yi Sun, Pengcheng Shi, Hongfa Xiang, Xin Liang, Yan Yu: High-Safety Nonaqueous Electrolytes and Interphases for Sodium-Ion Batteries. In: Small. Band 15, Nr. 14, 2019, ISSN 1613-6829, S. 1805479, doi:10.1002/smll.201805479 (wiley.com [abgerufen am 20. Oktober 2020]).

wiwo.de

zdb-katalog.de

  • Dominique Larcher, Jean-Marie Tarascon: Towards greener and more sustainable batteries for electrical energy storage. In: Nature Chemistry. Band 7, Nr. 1. Springer Nature, Januar 2015, ISSN 1755-4330, S. 19–29, doi:10.1038/nchem.2085 (nature.com).
  • Gebrekidan Gebresilassie Eshetu, Sylvie Grugeon, Huikyong Kim, Sangsik Jeong, Liming Wu: Comprehensive Insights into the Reactivity of Electrolytes Based on Sodium Ions. In: ChemSusChem. Band 9, Nr. 5, 8. März 2016, ISSN 1864-5631, S. 462–471, doi:10.1002/cssc.201501605 (wiley.com [abgerufen am 20. Oktober 2020]).
  • Yi Sun, Pengcheng Shi, Hongfa Xiang, Xin Liang, Yan Yu: High-Safety Nonaqueous Electrolytes and Interphases for Sodium-Ion Batteries. In: Small. Band 15, Nr. 14, 2019, ISSN 1613-6829, S. 1805479, doi:10.1002/smll.201805479 (wiley.com [abgerufen am 20. Oktober 2020]).
  • Seongwook Chae, Taewoong Lee, Woong Kwon, Haisu Kang, Hyeok Jun Seo, Eunji Kim, Euigyung Jeong, Jin Hong Lee, Seung Geol Lee: Longitudinally grown pyrolyzed quinacridones for sodium-ion battery anode. In: Chemical Engineering Journal. Band 453, 1. Februar 2023, ISSN 1385-8947, S. 139805, doi:10.1016/j.cej.2022.139805 (sciencedirect.com [abgerufen am 15. April 2023]).