Jiang Yundan, Xu Wangping, Zhao Wei, Cao Juexian
Department of Physics & Hunan Institute of Advanced Sensing and Information Technology, Xiangtan University Xiangtan 411105 PR China
RSC Adv. 2023 Mar 13;13(12):8182-8189. doi: 10.1039/d3ra00434a. eCollection 2023 Mar 8.
Sodium-ion batteries (SIBs) have attracted huge attention due to not only the similar electrochemical properties to Lithium-ion batteries (LIBs) but also the abundant natural reserves of sodium. However, the high diffusion barrier has hindered its application. In this work, we have theoretically studied the relationship between the strain and the diffusion barrier/path of sodium ions in layered CrN by first-principles calculation. Our results show that the strain can not only effectively decrease the diffusion barrier but also change the sodium diffusion path, which can be realized by alkali metal intercalation. Moreover, the diffusion barrier is as low as 0.04 eV with the Cs atoms embedding in layered CrN (CsCrN), suggesting an excellent candidate cathode for SIBs. In addition, the decrease of the barrier mainly originated from the fact that interlayer electronic coupling weakened with the increase of interlayer spacing. Our findings provide an effective way to enhance sodium diffusion performance, which is beneficial for the design of SIB electrode materials.
钠离子电池(SIBs)不仅因其与锂离子电池(LIBs)相似的电化学性质,还因其丰富的钠天然储量而备受关注。然而,高扩散势垒阻碍了其应用。在这项工作中,我们通过第一性原理计算从理论上研究了层状CrN中应变与钠离子扩散势垒/路径之间的关系。我们的结果表明,应变不仅可以有效降低扩散势垒,还可以改变钠的扩散路径,这可以通过碱金属嵌入来实现。此外,当Cs原子嵌入层状CrN(CsCrN)中时,扩散势垒低至0.04 eV,表明其是一种优异的SIBs候选阴极材料。此外,势垒的降低主要源于层间电子耦合随着层间距的增加而减弱。我们的研究结果提供了一种增强钠扩散性能的有效方法,这有利于SIB电极材料的设计。