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◆ ACS Applied Materials & Interfaces2026-02-16· Materials science

Nickel Hexacyanoferrate with Dual-Redox Centers for High-Performance Aluminum-ion Batteries

Shengyan Feng, Ke Yi, Chengkang Chang

原始摘要(英文原文)· Original abstract
The development of high-performance cathode materials for aluminum-ion batteries (AIBs) is hindered by the strong electrostatic interactions of Al 3+ ions with host frameworks, leading to sluggish kinetics and structural degradation. Herein, nickel hexacyanoferrate (NiHCF) nanomaterials with rhombohedral (r-NiHCF) and cubic (c-NiHCF) phases are synthesized using a chelator-regulated solvothermal approach at 80 and 150 °C, respectively. The r-NiHCF exhibits a more ordered lattice with higher Na + content, fewer [Fe(CN) 6 ] vacancies, and reduced water content, resulting in a larger specific surface area (58.34 vs 13.13 m 2 g –1 ) and smaller particle size (37 vs 224 nm). Electrochemical tests reveal that r-NiHCF delivers twice the initial discharge capacity of c-NiHCF (128.8 vs 67.1 mAh g –1 at 0.4 A g –1 ) and maintains 77.1% capacity retention after 500 cycles. It also demonstrates superior rate performance (38.5 mAh g –1 at 2.0 A g –1 ) and a higher Al 3+ diffusion coefficient (1.04 × 10 –11 vs 2.99 × 10 –13 cm 2 s –1 ). Mechanistic studies confirm a highly reversible dual-redox behavior (Ni 2+ /Ni 3+ and Fe 2+ /Fe 3+ ) in r-NiHCF, facilitated by a phase transition that stabilizes the framework during cycling. This work highlights crystal phase engineering as a strategic approach to optimize Prussian blue analogue cathodes for high-performance multivalent-ion batteries.
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Nickel Hexacyanoferrate with Dual-Redox Centers for High-Performance Aluminum-ion Batteries — 科研速览 Science Skim