首页> 外文期刊>ACS applied materials & interfaces >Drastically Enhanced High-Rate Performance of Carbon-Coated LiFePO4 Nanorods Using a Green Chemical Vapor Deposition (CVD) Method for Lithium Ion Battery: A Selective Carbon Coating Process
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Drastically Enhanced High-Rate Performance of Carbon-Coated LiFePO4 Nanorods Using a Green Chemical Vapor Deposition (CVD) Method for Lithium Ion Battery: A Selective Carbon Coating Process

机译:使用绿色化学气相沉积(CVD)方法对锂离子电池进行碳包覆的LiFePO4纳米棒,大幅提高了高速率性能:选择性碳涂层工艺

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Application of LiFePO4 (LFP) to large current power supplies is greatly hindered by its poor electrical conductivity (10(-9) S cm(-1)) and sluggish Li+ transport. Carbon coating is considered to be necessary for improving its inteparticle electronic conductivity and thus electrochemical performance. Here, we proposed a novel, green, low cost and controllable CVD approach using solid glucose as carbon source which can be extended to most cathode and anode materials in need of carbon coating. Hydrothermally synthesized LFP nanorods with optimized thickness of carbon coated by this recipe are shown to have superb high-rate performance, high energy, and power densities, as well as long high-rate cycle lifetime. For 200 C (18s) charge and discharge, the discharge capacity and voltage are 89.69 mAh g(-1) and 3.030 V, respectively, and the energy and power densities are 271.80 Wh kg(-1) and 54.36 kW kg(-1), respectively. The capacity retention of 93.0%, and the energy and power density retention of 93.6% after 500 cycles at 100 C were achieved. Compared to the conventional carbon coating through direct mixing with glucose (or other organic substances) followed by annealing (DMGA), the carbon phase coated using this CVD recipe is of higher quality and better uniformity. Undoubtedly, this approach enhances significantly the electrochemical performance of high power LFP and thus broadens greatly the prospect of its applications to large current power supplies such as electric and hybrid electric vehicles.
机译:LiFePO4(LFP)在大电流电源中的应用由于其较差的电导率(10(-9)S cm(-1))和缓慢的Li +传输而受到严重阻碍。碳涂层被认为是改善其粒子间电子电导率并因此改善其电化学性能所必需的。在这里,我们提出了一种使用固体葡萄糖作为碳源的新颖,绿色,低成本且可控的CVD方法,该方法可以扩展到大多数需要碳涂层的阴极和阳极材料。经此配方涂覆的具有优化碳厚度的水热合成LFP纳米棒显示出极好的高速率性能,高能量和功率密度,以及长的高速率循环寿命。对于200 C(18s)的充电和放电,放电容量和电压分别为89.69 mAh g(-1)和3.030 V,能量和功率密度分别为271.80 Wh kg(-1)和54.36 kW kg(-1) ), 分别。在100 C下进行500次循环后,容量保持率达到93.0%,能量和功率密度保持率达到93.6%。与通过与葡萄糖(或其他有机物质)直接混合然后进行退火(DMGA)直接混合的常规碳涂层相比,使用此CVD配方涂覆的碳相具有更高的质量和更好的均匀性。无疑,这种方法显着提高了大功率LFP的电化学性能,因此大大拓宽了其在大电流电源(例如电动和混合动力汽车)中的应用前景。

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