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Published on: July 12, 2016
An Adaptive High-Entropy Superstructure Cathode: Concurrently Tackling Phase Transition, Oxygen Redox, and Ambient
Meng Ma1, Kai Yao2, Yinxin Zhu1
1State Key Laboratory of Flexible Electronics (LOFE) & Institute of Flexible Electronics, Northwestern Polytechnical University, Xi'an, China.
Abstract:
The two-dimensional layered framework, while conferring notable ion diffusion kinetics for potassium layered transition metal oxides (KxTMO2), concurrently suffers from inherent structural degradation, limited charge compensation sites and poor air stability. Herein, an entropy-tailored dual-site Li-doped high-entropy superstructure oxide, K0.67Mn0.47Li0.06Co0.125Ni0.125Fe0.125Cu0.125O2, is proposed as a cathode for potassium-ion batteries. The unexpected phase transitions of P-O and P-P' induced by Jahn-Teller (J-T) lattice distortion and MnO6 layer gliding can be completely suppressed by high-entropy, superlattice stabilization, and geometric and electronic interlayer pinning effect, thus enabling a single-phase solid-solution K-ion storage mechanism. Meanwhile, [K-O-Li] configuration, along with high-entropy composition, elevates O 2p non-bonding orbital energy, enabling differentiated hybridization with multi-TM d-orbitals to establish a continuous and broad distribution of coupled hybrid network, which facilitates highly reversible cationic-anionic charge compensation. In situ formed spinel-like layer acts as an electronically passivated barrier with markedly reduced CO2 chemisorption on (010) facet to curtail the possibility of acid-driven degradation reactions occurring on layered oxide bulk, a primary pathway for air-induced deterioration, thus fundamentally enhancing ambient resistance. Therefore, high-entropy electrode contributes high energy density, superior rate capability and cyclic stability in half-cell and solid-state full-batteries. This work provides insights into the design of high-stability layered oxide cathodes for practical application.
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