The solid-state reaction has been widely employed as the standard procedure to prepare oxide cathode materials for sodium-ion batteries. However, it involves multiple steps and consumes much energy. In this work, we report a facile method to synthesize a large-grained O3–NaCrO 2 cathode by directly reducing sodium dichromate dihydrate (Na 2 Cr 2 O 7 ·2H 2 O) under a hydrogen atmosphere. Owing to its unique large particle morphology, the as-prepared NaCrO 2 exhibits a high tap density of 2.55 g cm –3 . The compact NaCrO 2 shows excellent electrochemical performance with a high reversible capacity of 123 mAh g –1 at 0.1C, a high capacity retention of 88.2% after 500 cycles at 2C, and an outstanding rate capability of 68 mAh g –1 at 20C. The performance is attributed to a stable structure from the distinctive morphology with small specific surface area to suppress interfacial side reactions and rapid Na-ion diffusion channels with a highly (110)-oriented crystal structure. Ex situ X-ray diffraction and cyclic voltammetry tests demonstrate the consecutive and reversible phase transition mechanism with facile Na + migration. Importantly, the obtained cathode material exhibits an excellent performance in sodium-ion full cells with hard carbon as the anode.
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Wang et al. (2019) studied this question.
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