Lee Yu-Ting, Chen Yi-Tsen, Cheng Jun-Yi, Yang Chun-Chuen, Lin Kuen-Song
Department of Physics, Chung Yuan Christian University, No. 200, Zhongbei Rd., Zhongli, Taoyuan 320314, Taiwan.
Department of Photonics, National Cheng Kung University, No. 1, University Rd., Tainan 701401, Taiwan.
ACS Omega. 2024 Jun 21;9(26):28283-28292. doi: 10.1021/acsomega.4c01757. eCollection 2024 Jul 2.
Lithium-ion batteries with LiV(PO)/C as the cathode have been a popular research topic in recent years; however, studies of the effects of external magnetic fields on them are less common. This study investigates the effects of an external magnetic field applied parallel to the direction of the anode and cathode on the ion transport through iron-doped Li(V Fe )(PO), the outer carbon coating, the film/electrolyte/separator, and up to the lithium metal electrode on a microscopic level. The results reveal that for the = 0.05 sample with lower doping, the magnetostriction expansion of Li(V Fe )(PO) and the magnetostrictive contraction effect of the outer ordered carbon layer cancel each other out, resulting in no significant enhancement of the battery's energy and power density due to the external magnetic field. In contrast, the = 0.1 sample, lacking magnetostrictive contraction in the outer ordered carbon layer, shows that its energy and power density can be influenced by the magnetic field. Under zero magnetic field, the cyclic performance exhibits superior average capacity performance in the = 0.05 sample, while the = 0.1 sample shows a lower decay rate. Both samples are affected by the magnetic field; however, the = 0.1 sample performs better under magnetic conditions. In particular, in the C-rate tests under a magnetic field, the sample with = 0.1 showed a significant relative reduction in capacity decay rate by 20.18% compared to the sample with = 0.05.
以LiV(PO)/C为正极的锂离子电池近年来一直是热门研究课题;然而,关于外部磁场对其影响的研究却较少见。本研究在微观层面上研究了平行于阳极和阴极方向施加的外部磁场对离子通过铁掺杂的Li(V Fe )(PO)、外部碳涂层、薄膜/电解质/隔膜直至锂金属电极传输的影响。结果表明,对于掺杂较低的 = 0.05样品,Li(V Fe )(PO)的磁致伸缩膨胀与外部有序碳层的磁致伸缩收缩效应相互抵消,导致外部磁场不会显著提高电池的能量和功率密度。相比之下, = 0.1样品在外部有序碳层中缺乏磁致伸缩收缩,表明其能量和功率密度会受到磁场的影响。在零磁场下,循环性能在 = 0.05样品中表现出优异的平均容量性能,而 = 0.1样品显示出较低的衰减率。两个样品都受到磁场的影响;然而, = 0.1样品在磁场条件下表现更好。特别是,在磁场下的C倍率测试中, = 0.1的样品与 = 0.05的样品相比,容量衰减率显著相对降低了20.18%。