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Sodium–iodine batteries offer high voltage and theoretical capacity but suffer from iodine dissolution, shuttle effect, and sluggish kinetics. This work develops a porous Cu/Ni–Mo metal–organic framework (MOF) formulated as Cu II Ni II (4, 4′-bpy) (Mo VI O 4) 2 (4, 4′-bpy = 4, 4′-bipyridine) that addresses these challenges through a synergistic mechanism. The material’s channels can physically confine iodine via hydrogen bonds, while copper sites facilitate chemical immobilization via the reversible conversion CuNi (4, 4′-bpy) (MoO 4) 2 + (x /2) I 2 = Cu 1 -x Ni (4, 4′-bpy) (MoO 4) 2 + x CuI, with an energy barrier of 0. 45 eV. The structural stability of the Cu-vacant MOF is associated with its rigid multinuclear Cu 2 Ni 2 clusters and abundant Mo–O–M (M= Ni, Cu) linkages. Impressively, some specific crystalline planes of the MOF undergo reversible order–disorder transitions during charge–discharge processes. These dynamic transformations are related to the adsorption of I 2 on the Mo/Ni centers and the lattice O 2– of these surfaces, promoting I–I bond elongation and cleavage, significantly enhancing iodine redox kinetics. Consequently, the as-fabricated Na–I 2 battery shows a capacity of ∼250 mAh g –1 at 0. 3 A g –1 with capacity retention (∼100 mAh g –1) over 1000 cycles at 2 A g –1.
Wang et al. (Wed,) studied this question.
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