Logo of Humboldt-Universität zu BerlinLogo of Humboldt-Universität zu Berlin
edoc-Server
Open-Access-Publikationsserver der Humboldt-Universität
de|en
Header image: facade of Humboldt-Universität zu Berlin
View Item 
  • edoc-Server Home
  • Artikel und Monographien
  • Zweitveröffentlichungen
  • View Item
  • edoc-Server Home
  • Artikel und Monographien
  • Zweitveröffentlichungen
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.
All of edoc-ServerCommunity & CollectionTitleAuthorSubjectThis CollectionTitleAuthorSubject
PublishLoginRegisterHelp
StatisticsView Usage Statistics
All of edoc-ServerCommunity & CollectionTitleAuthorSubjectThis CollectionTitleAuthorSubject
PublishLoginRegisterHelp
StatisticsView Usage Statistics
View Item 
  • edoc-Server Home
  • Artikel und Monographien
  • Zweitveröffentlichungen
  • View Item
  • edoc-Server Home
  • Artikel und Monographien
  • Zweitveröffentlichungen
  • View Item
2020-08-21Zeitschriftenartikel DOI: 10.18452/22097
A Co- and Ni-Free P2/O3 Biphasic Lithium Stabilized Layered Oxide for Sodium-Ion Batteries and its Cycling Behavior
Yang, Liangtao cc
Lopez del Amo, Juan Miguel cc
Shadike, Zulipiya cc
Bak, Seong-Min cc
Bonilla, Francisco
Galceran Mestes, Montserrat cc
Nayak, Prasant cc
Buchheim, Johannes cc
Yang, Xiao-Qing cc
Rojo, Teófilo
Adelhelm, Philipp cc
Mathematisch-Naturwissenschaftliche Fakultät
Cobalt‐ and nickel‐free cathode materials are desirable for developing low‐cost sodium‐ion batteries (SIBs). Compared to the single P‐type and O‐type structures, biphasic P/O structures become a topic of interest thanks to improved performance. However, the added complexity complicates the understanding of the storage mechanism and the phase behavior is still unclear, especially over consecutive cycling. Here, the properties of biphasic P2(34%)/O3(60%) Na0.8Li0.2Fe0.2Mn0.6O2 and its behavior at different states of charge/discharge are reported on. The material is composed of single phase O3 and P2/O3 biphasic particles. Sodium occupies the alkali layers, whereas lithium predominantly (95%) is located in the transition metal layer. An initial reversible capacity of 174 mAh g‐1 is delivered with a retention of 82% dominated by Fe3+/Fe4+ along with contributions from oxygen and partial Mn3+/4+ redox. Cycling leads to complex phase transitions and ion migration. The biphasic nature is nevertheless preserved, with lithium acting as the structure stabilizer.
Files in this item
Thumbnail
adfm.202003364.pdf — Adobe PDF — 3.660 Mb
MD5: e82fbba24f0c1f08b17e8fcc93058691
Cite
BibTeX
EndNote
RIS
(CC BY-NC 4.0) Attribution-NonCommercial 4.0 International(CC BY-NC 4.0) Attribution-NonCommercial 4.0 International(CC BY-NC 4.0) Attribution-NonCommercial 4.0 International
Details
DINI-Zertifikat 2019OpenAIRE validatedORCID Consortium
Imprint Policy Contact Data Privacy Statement
A service of University Library and Computer and Media Service
© Humboldt-Universität zu Berlin
 
DOI
10.18452/22097
Permanent URL
https://doi.org/10.18452/22097
HTML
<a href="https://doi.org/10.18452/22097">https://doi.org/10.18452/22097</a>