Abstract
Metal oxides are promising materials for long-duration thermochemical energy storage. Efforts to characterize their reaction kinetics, conversion rate, and morphological evolution during thermochemical cycling have largely focused on bulk and microscale measurements. However, the design of nanostructured metal oxides could improve the reaction reversibility and kinetics, warranting the development of platforms to investigate how these materials behave at the nanoscale. Here, we demonstrate the use of correlative, time-resolved electron energy loss spectroscopy and imaging in an environmental transmission electron microscope for studying the thermochemical cyclability of cobalt oxide nanoparticles with high spatial and temporal resolution. The spectroscopic data reveal a striking decrease in reaction kinetics after the first cycle, resulting from sintering-driven nanostructural densification. Comparison between cycling in humid and dry air shows that atmospheric conditions can modulate reaction transition temperatures but have limited effects on sintering over multiple cycles, suggesting long-term durability will instead rely on synthetic and/or nanostructural modifications.
| Original language | English |
|---|---|
| Pages (from-to) | 18075-18082 |
| Number of pages | 8 |
| Journal | Nano Letters |
| Volume | 25 |
| Issue number | 52 |
| DOIs | |
| State | Published - Dec 31 2025 |
| Externally published | Yes |
Keywords
- EELS
- energy storage
- metal oxide
- operando electron microscopy
- thermochemical material
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