A formal FeIII/V redox couple in an intercalation electrode
- Authors
- Ramachandran, Hari; Mu, Edward W.; Lomeli, Eder G.; Braun, Augustin; Goto, Masato; Hsu, Kuan H.; Liu, Jue; Jiang, Zhelong; Lim, Kipil; Busse, Grace M.; Moritz, Brian; Kas, Joshua J.; Vinson, John; Rehr, John J.; Park, Jungjin; Abate, Iwnetim I.; Shimakawa, Yuichi; Solomon, Edward I.; Yang, Wanli; Gent, William E.; Devereaux, Thomas P.; Chueh, William C.
- Issue Date
- 2025-10
- Publisher
- Nature Publishing Group
- Citation
- Nature Materials
- Abstract
- Iron redox cycling between low-valent oxidation states of FeII and FeIII drives crucial processes in nature. The FeII/III redox couple charge compensates the cycling of lithium iron phosphate, a positive electrode (cathode) for lithium-ion batteries. High-valent iron redox couples, involving formal oxidation higher than FeIII, could deliver higher electrochemical potentials and energy densities. However, because of the instability of high-valent Fe electrodes, they have proven difficult to probe and exploit in intercalation systems. Here we report and characterize a formal FeIII/V redox couple by revisiting the charge compensation mechanism of (de)lithiation in Li4FeSbO6. Valence-sensitive experimental and computational core-level spectroscopy reveal a direct transition from FeIII (3d5) to a negative-charge-transfer FeV (3d5L2) ground state on delithiation, without forming FeIV, or oxygen dimers. We identify that the cation ordering in Li4FeSbO6 drives a templated phase transition to stabilize the unique FeV species and demonstrate that disrupting cation ordering suppresses the FeIII/V redox couple. Exhibiting resistance to calendar aging, high operating potential and low voltage hysteresis, the FeIII/V redox couple in Li4FeSbO6 provides a framework for developing sustainable, Fe-based intercalation cathodes for high-voltage applications.
- Keywords
- X-RAY-ABSORPTION; IRON; OXIDATION; OXIDE; PERFORMANCE; SYSTEM; WATER
- ISSN
- 1476-1122
- URI
- https://pubs.kist.re.kr/handle/201004/153572
- DOI
- 10.1038/s41563-025-02356-x
- Appears in Collections:
- KIST Article > 2025
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