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首页> 外文期刊>ACS applied materials & interfaces >Ultrastable Sodium Storage in MoO3 Nanotube Arrays Enabled by Surface Phosphorylation
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Ultrastable Sodium Storage in MoO3 Nanotube Arrays Enabled by Surface Phosphorylation

机译:通过表面磷酸化使得MOO3纳米管阵列中的无限钠储存

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Molybdenum trioxide (MoO3) has been considered as an appealing choice of anode for sodium-ion batteries because of its high theoretical capacity (1117 mA h g(-1)). However, the large volume change upon Na+ storage results in poor cycling stability and capacity fade of MoO3. Here, we demonstrate a surface phosphorylation strategy to mitigate the degradation of three-dimensional MoO3 array electrodes. Such a phosphorylation strategy allows MoO3 arrays to sustain a capacity of 265 mA h g(-1), or similar to 90% of the initial value, at a rate of 2 A g(-1) over 1500 cycles, outperforming most reported MoO3 electrodes. Moreover, kinetic analysis unveils a capacitance-dominated Na+ storage feature of MoO3 arrays, owing to the enhanced electron mobility imparted by oxygen vacancies that are simultaneously introduced by phosphorylation. Hence, surface phosphorylation might offer new possibilities to bypass multiple materials challenges facing current sodium electrodes.
机译:由于其高理论能力(1117 mA H(-1)),三氧化钼(MOO3)被认为是钠离子电池的阳极的吸引力选择。 然而,Na +储存的大体积变化导致循环稳定性差和MOO3的容量衰落。 这里,我们证明了一种表面磷酸化策略,以减轻三维MOO3阵列电极的降解。 这种磷酸化策略允许MOO3阵列维持265mA Hg(-1)的容量,或类似于初始值的90%,以超过1500个循环的速率,优于大多数报道的MOO3电极 。 此外,由于通过磷酸化同时引入的氧空位赋予的增强的电子迁移率,动力学分析推出了MOO3阵列的电容主导的NA +存储特征。 因此,表面磷酸化可能提供绕过电流钠电极的多种材料挑战的新可能性。

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