State Key Laboratory on Marine Resource Utilization in South China Sea; Hainan Provincial Key Laboratory of Research on Utilization of Si-Zr-Ti Resources; College of Materials and Chemical Engineering , Hainan University , 58 Renmin Road , Haikou 570228 , China.
Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education) , Nankai University , Tianjin 300071 , China.
ACS Appl Mater Interfaces. 2018 Dec 5;10(48):41407-41414. doi: 10.1021/acsami.8b15933. Epub 2018 Nov 19.
In Li-ion batteries, the phase transition usually determines the electrochemical kinetics of some two-phase electrode materials, and it can be adopted to excellently interpret the memory effect of Li-ion batteries, therefore the size dependence of phase transition was expected to affect the memory effect significantly. In this work, we investigated the memory effect and phase transition of olivine LiFePO in Li-ion batteries. Through electrochemical measurements, we found that the memory effect of LiFePO was dependent on the particle size, especially after a long-time relaxation. By using the in situ X-ray diffraction, we found that the phase transition of nano-LiFePO was ahead of the charging and discharging processes, while it took place concurrently or later for micro-LiFePO, which might be attributed to the high-specific two-phase boundary of nano-LiFePO. Furthermore, the phase-transition diagram was adopted to interpret the size-dependent memory effect schematically. Notably, it is the first time to report the phase transition ahead of (dis)charging for nano-LiFePO, which is significant to understand the phase transition of two-phase electrode materials, as well as the relevant phenomena, such as the memory effect.
在锂离子电池中,相变通常决定了某些两相电极材料的电化学动力学,可以用来很好地解释锂离子电池的记忆效应,因此,相变的尺寸依赖性有望显著影响记忆效应。在这项工作中,我们研究了锂离子电池中橄榄石 LiFePO 的记忆效应和相变。通过电化学测量,我们发现 LiFePO 的记忆效应取决于颗粒尺寸,特别是在长时间弛豫后。通过原位 X 射线衍射,我们发现纳米 LiFePO 的相变发生在充电和放电过程之前,而对于微米 LiFePO 则同时或之后发生,这可能归因于纳米 LiFePO 的高比表面积两相界面。此外,我们采用相图来示意性地解释尺寸依赖性的记忆效应。值得注意的是,这是首次报道纳米 LiFePO 的相变先于(去)充电,这对于理解两相电极材料的相变以及相关现象,如记忆效应,具有重要意义。