Shibata Takayuki, Fukuzumi Yuya, Kobayashi Wataru, Moritomo Yutaka
Fucalty of Pure and Applied Science, Univ. of Tsukuba, Tsukuba 305-8571, Japan.
College of Physics, Univ. of Tsukuba, Tsukuba 305-8571, Japan.
Sci Rep. 2015 Mar 11;5:9006. doi: 10.1038/srep09006.
Sodium ion secondary battery (SIB) is a low-cost and ubiquitous secondary battery for next-generation large-scale energy storage. The diffusion process of large Na(+) (ionic radius is 1.12 Å), however, is considered to be slower than that of small Li(+) (0.76 Å). This would be a serious disadvantage of SIB as compared with the Lithium ion secondary battery (LIB). By means of the electrochemical impedance spectroscopy (EIS), we determined the diffusion constant (D) of Na(+) in thin films of O3- and P2-type NaCoO2 with layered structures. We found that the D values (~ 0.5-1.5 × 10(-10) cm(2)/s) of Na(+) are higher than those (< 1 × 10(-11) cm(2)/s) of Li(+) in layered LiCoO2. Especially, the D values of O3-NaCoO2 are even higher than those of P2-NaCoO2, probably because O3-NaCoO2 shows successive structural phase transitions from the O3, O'3, P'3, to P3 phases with Na(+) deintercalation. We further found that the activation energy (ED ~ 0.4 eV) for the Na(+) diffusion is significantly low in these layered cobalt oxides. We found a close relation between the relative capacity and the renormalized discharge rate ( = L(2)/DT, where L and T are the film thickness and discharge time, respectively).
钠离子二次电池(SIB)是一种用于下一代大规模储能的低成本且普遍存在的二次电池。然而,大尺寸的Na⁺(离子半径为1.12 Å)的扩散过程被认为比小尺寸的Li⁺(0.76 Å)的扩散过程要慢。与锂离子二次电池(LIB)相比,这将是SIB的一个严重缺点。通过电化学阻抗谱(EIS),我们测定了具有层状结构的O3型和P2型NaCoO₂薄膜中Na⁺的扩散常数(D)。我们发现,层状LiCoO₂中Na⁺的D值(约0.5 - 1.5×10⁻¹⁰ cm²/s)高于Li⁺的D值(<1×10⁻¹¹ cm²/s)。特别是,O3-NaCoO₂的D值甚至高于P2-NaCoO₂的D值,这可能是因为随着Na⁺脱嵌,O3-NaCoO₂呈现从O3、O'3、P'3到P3相的连续结构相变。我们还发现,在这些层状钴氧化物中,Na⁺扩散的活化能(ED约0.4 eV)显著较低。我们发现相对容量与重整化放电率(=L²/DT,其中L和T分别是薄膜厚度和放电时间)之间存在密切关系。