Department of Physics and Engineering Physics, University of Saskatchewan, Saskatoon, Saskatchewan, Canada.
J Phys Chem A. 2011 Nov 17;115(45):13045-9. doi: 10.1021/jp205057d. Epub 2011 Sep 21.
The mechanisms for thermal (self) diffusion of Li ions in fully lithiated LiFePO(4) have been investigated with spin polarized ab initio molecular dynamics calculations. The effect of electron correlation is taken into account with the GGA+U formalism. It was found that Li ion diffusion is not a continuous process but through a series of jumps from one site to another. A dominant process is the hopping between neighboring Li sites around the PO(4) groups, which results in a zigzag pathway along the crystallographic b-axis. This observation is in agreement with a recent neutron diffraction experiment. A second process involves the collaborative movements of the Fe ions leading to the formation of antisite defects and promotes Li diffusion across the Li ion channels. The finding of the second mechanism demonstrates the benefit of ab initio molecular dynamics simulation in sampling diffusion pathways that may not be anticipated.
利用自旋极化的第一性原理分子动力学计算研究了完全锂化 LiFePO(4)中锂离子热(自)扩散的机制。用 GGA+U 形式考虑了电子相关的影响。结果表明,锂离子扩散不是一个连续的过程,而是通过一系列从一个位置到另一个位置的跳跃。一个主要的过程是在 PO(4)基团周围相邻的 Li 位置之间的跳跃,这导致了沿着晶体学 b 轴的之字形路径。这一观察结果与最近的中子衍射实验一致。第二个过程涉及 Fe 离子的协同运动,导致反位缺陷的形成,并促进 Li 扩散穿过 Li 离子通道。第二个机制的发现证明了在抽样可能无法预料的扩散途径方面,第一性原理分子动力学模拟的优势。