Surface-redox sodium-ion storage in anatase titanium oxide.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 36596801.
- Also identified by DOI 10.1038/s41467-022-35617-3 and PMC identifier 9810695.
- No licence information is recorded for this record.
- Because redistribution is not established, this page shows the abstract only. Follow the links below for the full text.
Abstract
Sodium-ion storage technologies are promising candidates for large-scale grid systems due to the abundance and low cost of sodium. However, compared to well-understood lithium-ion storage mechanisms, sodium-ion storage remains relatively unexplored. Herein, we systematically determine the sodium-ion storage properties of anatase titanium dioxide (TiO<sub>2</sub>(A)). During the initial sodiation process, a thin surface layer (~3 to 5 nm) of crystalline TiO<sub>2</sub>(A) becomes amorphous but still undergoes Ti<sup>4+</sup>/Ti<sup>3+</sup> redox reactions. A model explaining the role of the amorphous layer and the dependence of the specific capacity on the size of TiO<sub>2</sub>(A) nanoparticles is proposed. Amorphous nanoparticles of ~10 nm seem to be optimum in terms of achieving high specific capacity, on the order of 200 mAh g<sup>-1</sup>, at high charge/discharge rates. Kinetic studies of TiO<sub>2</sub>(A) nanoparticles indicate that sodium-ion storage is due to a surface-redox mechanism that is not dependent on nanoparticle size in contrast to the lithiation of TiO<sub>2</sub>(A) which is a diffusion-limited intercalation process. The surface-redox properties of TiO<sub>2</sub>(A) result in excellent rate capability, cycling stability and low overpotentials. Moreover, tailoring the surface-redox mechanism enables thick electrodes of TiO<sub>2</sub>(A) to retain high rate properties, and represents a promising direction for high-power sodium-ion storage.