| Literature DB >> 28920941 |
Toshinari Koketsu1, Jiwei Ma2,3, Benjamin J Morgan4, Monique Body5, Christophe Legein5, Walid Dachraoui3,6, Mattia Giannini6,7,8, Arnaud Demortière3,6,7, Mathieu Salanne2,3, François Dardoize2, Henri Groult2, Olaf J Borkiewicz9, Karena W Chapman9, Peter Strasser1, Damien Dambournet2,3.
Abstract
In contrast to monovalent lithium or sodium ions, the reversible insertion of multivalent ions such as Mg2+ and Al3+ into electrode materials remains an elusive goal. Here, we demonstrate a new strategy to achieve reversible Mg2+ and Al3+ insertion in anatase TiO2, achieved through aliovalent doping, to introduce a large number of titanium vacancies that act as intercalation sites. We present a broad range of experimental and theoretical characterizations that show a preferential insertion of multivalent ions into titanium vacancies, allowing a much greater capacity to be obtained compared to pure TiO2. This result highlights the possibility to use the chemistry of defects to unlock the electrochemical activity of known materials, providing a new strategy for the chemical design of materials for practical multivalent batteries.Entities:
Year: 2017 PMID: 28920941 DOI: 10.1038/nmat4976
Source DB: PubMed Journal: Nat Mater ISSN: 1476-1122 Impact factor: 43.841