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Employing Synergetic Effect of Doping and Thin Film Coating to Boost the Performance of Lithium-Ion Battery Cathode Particles

机译:利用掺杂和薄膜涂层的协同效应来提高锂离子电池阴极颗粒的性能

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摘要

Atomic layer deposition (ALD) has evolved as an important technique to coat conformal protective thin films on cathode and anode particles of lithium ion batteries to enhance their electrochemical performance. Coating a conformal, conductive and optimal ultrathin film on cathode particles has significantly increased the capacity retention and cycle life as demonstrated in our previous work. In this work, we have unearthed the synergetic effect of electrochemically active iron oxide films coating and partial doping of iron on LiMn1.5Ni0.5O4 (LMNO) particles. The ionic Fe penetrates into the lattice structure of LMNO during the ALD process. After the structural defects were saturated, the iron started participating in formation of ultrathin oxide films on LMNO particle surface. Owing to the conductive nature of iron oxide films, with an optimal film thickness of ~0.6 nm, the initial capacity improved by ~25% at room temperature and by ~26% at an elevated temperature of 55 °C at a 1C cycling rate. The synergy of doping of LMNO with iron combined with the conductive and protective nature of the optimal iron oxide film led to a high capacity retention (~93% at room temperature and ~91% at 55 °C) even after 1,000 cycles at a 1C cycling rate.
机译:原子层沉积(ALD)已经发展成为一种重要技术,可以在锂离子电池的阴极和阳极颗粒上涂覆保形保护薄膜,以增强其电化学性能。如我们先前的工作所示,在阴极颗粒上涂覆保形,导电和最佳的超薄薄膜可以显着提高容量保持能力和循环寿命。在这项工作中,我们发掘了电化学活性氧化铁膜涂层和铁在LiMn1.5Ni0.5O4(LMNO)颗粒上的部分掺杂的协同作用。在ALD过程中,离子Fe渗入LMNO的晶格结构中。结构缺陷饱和后,铁开始参与LMNO颗粒表面超薄氧化膜的形成。由于氧化铁膜的导电特性,最佳膜厚为〜0.6 nm,因此在室温下以1C的循环速率,初始容量在室温下提高了约25%,在55°C的高温下提高了约26%。 LMNO与铁掺杂的协同作用以及最佳氧化铁膜的导电性和保护性相结合,即使在1C循环1000次后仍能保持较高的容量保持率(室温下约为93%,55°C下约为91%)。循环速率。

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