The rapid progress in mass-market applications of metal-ion batteries intensifies the development of economically feasible electrode materials based on earth-abundant elements. Here, we report on a record-breaking titanium-based positive electrode material, KTiPO4F, exhibiting a superior electrode potential of 3.6 V in a potassium-ion cell, which is extraordinarily high for titanium redox transitions. We hypothesize that such an unexpectedly major boost of the electrode potential benefits from the synergy of the cumulative inductive effect of two anions and charge/vacancy ordering. Carbon-coated electrode materials display no capacity fading when cycled at 5C rate for 100 cycles, which coupled with extremely low energy barriers for potassium-ion migration of 0.2 eV anticipates high-power applications. Our contribution shows that the titanium redox activity traditionally considered as "reducing" can be upshifted to near-4V electrode potentials thus providing a playground to design sustainable and cost-effective titanium-containing positive electrode materials with promising electrochemical characteristics.

Fedotov, S.s., Luchinin, N.d., Aksyonov, D.a., Morozov, A.v., Ryazantsev, S.v., Gaboardi, M., et al. (2020). Titanium-based potassium-ion battery positive electrode with extraordinarily high redox potential. NATURE COMMUNICATIONS, 11(1) [10.1038/s41467-020-15244-6].

Titanium-based potassium-ion battery positive electrode with extraordinarily high redox potential

Mattia Gaboardi;
2020-01-01

Abstract

The rapid progress in mass-market applications of metal-ion batteries intensifies the development of economically feasible electrode materials based on earth-abundant elements. Here, we report on a record-breaking titanium-based positive electrode material, KTiPO4F, exhibiting a superior electrode potential of 3.6 V in a potassium-ion cell, which is extraordinarily high for titanium redox transitions. We hypothesize that such an unexpectedly major boost of the electrode potential benefits from the synergy of the cumulative inductive effect of two anions and charge/vacancy ordering. Carbon-coated electrode materials display no capacity fading when cycled at 5C rate for 100 cycles, which coupled with extremely low energy barriers for potassium-ion migration of 0.2 eV anticipates high-power applications. Our contribution shows that the titanium redox activity traditionally considered as "reducing" can be upshifted to near-4V electrode potentials thus providing a playground to design sustainable and cost-effective titanium-containing positive electrode materials with promising electrochemical characteristics.
2020
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHEM-03/A - Chimica generale e inorganica
Settore PHYS-03/A - Fisica sperimentale della materia e applicazioni
English
Con Impact Factor ISI
Fedotov, S.s., Luchinin, N.d., Aksyonov, D.a., Morozov, A.v., Ryazantsev, S.v., Gaboardi, M., et al. (2020). Titanium-based potassium-ion battery positive electrode with extraordinarily high redox potential. NATURE COMMUNICATIONS, 11(1) [10.1038/s41467-020-15244-6].
Fedotov, Ss; Luchinin, Nd; Aksyonov, Da; Morozov, Av; Ryazantsev, Sv; Gaboardi, M; Plaisier, Jr; Stevenson, Kj; Abakumov, Am; Antipov, Ev
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/394963
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