首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Lithium phosphorous oxynitride (LiPON) coated NiFe2O4 anode material with enhanced electrochemical performance for lithium ion batteries
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Lithium phosphorous oxynitride (LiPON) coated NiFe2O4 anode material with enhanced electrochemical performance for lithium ion batteries

机译:锂磷氧氮化物(Lipon)涂覆的NiFe2O4阳极材料,具有增强的锂离子电池的电化学性能

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摘要

Polycrystalline nickel ferrite (NiFe2O4) thin films were fabricated by pulsed laser deposition (PLD) and coated with nanometer layer of lithium phosphorus oxynitride (LiPON) by radio frequency magnetron sputtering (RF sputtering). Physical characterizations demonstrated that NiFe2O4 thin films were not destroyed by LiPON coating with 50 nm thickness. Discharge capacity of LiPON coated NiFe2O4 thin film after 50 cycles at 5 mu A cm(-2) was 849 mAh g(-1), much higher than the counterpart value of pristine NiFe2O4 thin film (449 mAh g(-1)), while rate capability was also greatly enhanced. Ex situ TEM investigation confirmed the two-steps reaction mechanism between NiFe2O4 and Li, which includes an irreversible decomposition reaction of NiFe2O4 in the first discharge process and reversible reactions between NiO, Fe2O3 and their nanosized metal particles afterward. The significant improvement on the electrochemical performance was ascribed to the amorphous LiPON layer on the surface, which suppressed the volume expansion of electrode, the formation of delaminated particles and generation of cracks on electrode surface, as proved by ex situ SEM and AFM results. The LiPON coating is an effective approach to enhance the electrochemical performance of conversion materials for lithium ion batteries. (C) 2018 Elsevier B.V. All rights reserved.
机译:通过脉冲激光沉积(PLD)制造多晶镍铁氧体(NiFE2O4)薄膜,并通过射频磁控溅射(RF溅射)涂覆有纳米磷氧磷氮化锂(Lipon)的纳米层。物理特征证明NiFe2O4薄膜未被脂质涂层厚度破坏,厚度为50nm。脂质涂层的NiFe2O4薄膜在50μm(-2)下50℃下的薄膜放电容量为849mAhg(-1),远高于原始NiFe2O4薄膜的对应物(449mAhg(-1)),虽然速率能力也大大提高了。 EX原位TEM调查证实了NiFe2O4和Li之间的两步反应机制,其包括NiFe2O4在第一放电过程中的不可逆分解反应,并在NiO,Fe 2 O 3和其纳米化金属颗粒之间的可逆反应。电化学性能的显着改善归因于表面上的无定形脂质层,其抑制电极的体积膨胀,所以通过前原位SEM和AFM结果证明的电极表面上的裂缝的形成和在电极表面上产生裂缝。脂质涂料是一种有效的方法,可以提高锂离子电池转化材料的电化学性能。 (c)2018年elestvier b.v.保留所有权利。

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