Description
This dataset contains the information on our recent body of work on transition-metal oxide-based magneto-ionics and all the relevant data files. In this work, we propose a nanoscale-engineered magneto-ionic architecture (comprising a thin solid electrolyte in contact with a liquid electrolyte), that drastically enhances cyclability while preserving sufficiently high electric fields to trigger ion motion. Specifically, we show that the insertion of a highly nanostructured (amorphous-like) Ta layer (with suitable thickness and electric resistivity) between a magneto-ionic target material (i.e., Co3O4) and the liquid electrolyte, increases magneto-ionic cyclability from < 30 cycles (when no Ta is inserted) to more than 800 cycles. The Ta layer is effective in trapping oxygen and hindering O2– ions from moving into the liquid electrolyte, thus keeping O2– motion mainly restricted between Co3O4 and Ta when voltage of alternating polarity is applied. We demonstrate that this approach provides a suitable strategy to boost magneto-ionics by combining the benefits of solid and liquid electrolytes in a synergetic manner.
| Date made available | 31 Mar 2023 |
|---|---|
| Publisher | CORA.Repositori de Dades de Recerca |
Research output
- 1 Article
-
Regulating oxygen ion transport at the nanoscale to enable highly cyclable magneto-ionic control of magnetism
Tan, Z., Ma, Z., Fuentes Rodríguez, L., Liedke, M. O., Butterling, M., Attallah, A., Hirschmann, E., Wagner, A., Abad, L., Casañ Pastor, N., Lopeandia Fernandez, A., Menendez Dalmau, E. & Sort Viñas, J., 27 Mar 2023, In: ACS Nano. 17, 7, p. 6973 - 6984 12 p.Research output: Contribution to journal › Article › Research › peer-review
Open Access15 Link opens in a new tab Citations (Scopus)1 Downloads (Pure)
Cite this
- DataSetCite
- Short
- Compact