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Manipulating Phase Stability and Kinetics in Prussian Blue Cathode via Entropy Engineering and d10 Cation
Honglin Huang1, Shuangyan Qiao1, Benhui Lv1
1State Key Laboratory of Flexible Electronics (LoFE), Institute of Flexible Electronics, Northwestern Polytechnical University, Xi'an 710072, China.
None:
Phase transition and [Fe(CN)6]4- defects seriously limit electrochemical performance of Prussian blue analogue (PBA) cathodes for potassium-ion batteries (PIBs). Herein, entropy engineering and d10 cation incorporation are utilized to construct a medium-entropy PBA, K1.23Fe0.42Mn0.45Sn0.13[Fe(CN)6]0.94·1.35H2O (KFMSHCF), as the cathode material for PIBs. Entropy-induced cation disorder markedly suppresses anion vacancies, while the entropy stabilization effect and Sn2+ with a d10 configuration stabilize local coordination environments. High configurational entropy boosts KFMSHCF to exhibit reduced band gap and low K-ion diffusion barrier, thereby ensuring excellent electrochemical kinetic. KFMSHCF undergoes a zero-strain solid-solution mechanism using Fe, Mn and Sn ions as redox centers for charge compensation. Therefore, KFMSHCF delivers a high initial energy density of 364.2 Wh·kg-1, remarkable cycling stability with a capacity retention of 82.1% after 100 cycles and long lifespan over 300 cycles, and significantly enhanced rate capability. The fabricated high-energy-density K-ion full batteries achieve ultralong lifespan over 2500 cycles with an ultralow capacity-decay-rate of 0.017% per cycle.
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